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Dome

A dome (from Latin domus) is an architectural element similar to the hollow upper half of a sphere. There is significant overlap with the term cupola, which may also refer to a dome or a structure on top of a dome. The precise definition of a dome has been a matter of controversy and there are a wide variety of forms and specialized terms to describe them.

A dome can rest directly upon a rotunda wall, a drum, or a system of squinches or pendentives used to accommodate the transition in shape from a rectangular or square space to the round or polygonal base of the dome. The dome's apex may be closed or may be open in the form of an oculus, which may itself be covered with a roof lantern and cupola.

Domes have a long architectural lineage that extends back into prehistory. Domes were built in ancient Mesopotamia, and they have been found in Persian, Hellenistic, Roman, and Chinese architecture in the ancient world, as well as among a number of indigenous building traditions throughout the world. Dome structures were common in both Byzantine architecture and Sasanian architecture, which influenced that of the rest of Europe and Islam, respectively, in the Middle Ages. The domes of European Renaissance architecture spread from Italy in the early modern period, while domes were frequently employed in Ottoman architecture at the same time. Baroque and Neoclassical architecture took inspiration from Roman domes.

Advancements in mathematics, materials, and production techniques resulted in new dome types. Domes have been constructed over the centuries from mud, snow, stone, wood, brick, concrete, metal, glass, and plastic. The symbolism associated with domes includes mortuary, celestial, and governmental traditions that have likewise altered over time. The domes of the modern world can be found over religious buildings, legislative chambers, sports stadiums, and a variety of functional structures.

Etymology edit

The English word "dome" ultimately derives from the ancient Greek and Latin domus ("house"), which, up through the Renaissance, labeled a revered house, such as a Domus Dei, or "House of God", regardless of the shape of its roof. This is reflected in the uses of the Italian word duomo, the German/Icelandic/Danish word dom ("cathedral"), and the English word dome as late as 1656, when it meant a "Town-House, Guild-Hall, State-House, and Meeting-House in a city." The French word dosme came to acquire the meaning of a cupola vault, specifically, by 1660. This French definition gradually became the standard usage of the English dome in the eighteenth century as many of the most impressive Houses of God were built with monumental domes, and in response to the scientific need for more technical terms.[1][a]

Definitions edit

Across the ancient world, curved-roof structures that would today be called domes had a number of different names reflecting a variety of shapes, traditions, and symbolic associations.[b][c][d][e] The shapes were derived from traditions of pre-historic shelters made from various impermanent pliable materials and were only later reproduced as vaulting in more durable materials.[b] The hemispherical shape often associated with domes today derives from Greek geometry and Roman standardization, but other shapes persisted, including a pointed and bulbous tradition inherited by some early Islamic mosques.[f]

Modern academic study of the topic has been controversial and confused by inconsistent definitions, such as those for cloister vaults and domical vaults.[g][h] Dictionary definitions of the term "dome" are often general and imprecise.[i] Generally-speaking, it "is non-specific, a blanket-word to describe an hemispherical or similar spanning element."[g][j] Published definitions include: hemispherical roofs alone;[k][l][m] revolved arches;[n][o][p] and vaults on a circular base alone,[q][r][s][t][u][v][w][x] circular or polygonal base,[y][z][aa][ab][ac] circular, elliptical, or polygonal base,[ad][ae][af] or an undefined area.[ag][ah][ai][aj][ak][al][am] Definitions specifying vertical sections include: semicircular, pointed, or bulbous;[r][ai][al] semicircular, segmental or pointed;[x][aj] semicircular, segmental, pointed, or bulbous;[s][t][u][v][af] semicircular, segmental, elliptical, or bulbous;[ae] and high profile, hemispherical, or flattened.[am]

 
Comparison of a generic "true" arch (left) and a corbel arch (right)

Sometimes called "false" domes, corbel domes achieve their shape by extending each horizontal layer of stones inward slightly farther than the lower one until they meet at the top.[2] A "false" dome may also refer to a wooden dome.[3] The Italian use of the term finto, meaning "false", can be traced back to the 17th century in the use of vaulting made of reed mats and gypsum mortar.[4] "True" domes are said to be those whose structure is in a state of compression, with constituent elements of wedge-shaped voussoirs, the joints of which align with a central point. The validity of this is unclear, as domes built underground with corbelled stone layers are in compression from the surrounding earth.[5]

The precise definition of "pendentive" has also been a source of academic contention, such as whether or not corbelling is permitted under the definition and whether or not the lower portions of a sail vault should be considered pendentives.[6] Domes with pendentives can be divided into two kinds: simple and compound.[7] In the case of the simple dome, the pendentives are part of the same sphere as the dome itself; however, such domes are rare.[8] In the case of the more common compound dome, the pendentives are part of the surface of a larger sphere below that of the dome itself and form a circular base for either the dome or a drum section.[7]

The fields of engineering and architecture have lacked common language for domes, with engineering focused on structural behavior and architecture focused on form and symbolism.[an][i][e][ao][ap] Additionally, new materials and structural systems in the 20th century have allowed for large dome-shaped structures that deviate from the traditional compressive structural behavior of masonry domes. Popular usage of the term has expanded to mean "almost any long-span roofing system".[ao]

Elements edit

 
Dome of the Church of the Assumption in Carcaixent

The word "cupola" is another word for "dome", and is usually used for a small dome upon a roof or turret.[9] "Cupola" has also been used to describe the inner side of a dome.[10][ab] The top of a dome is the "crown". The inner side of a dome is called the "intrados" and the outer side is called the "extrados".[11] As with arches, the "springing" of a dome is the base level from which the dome rises and the "haunch" is the part that lies roughly halfway between the base and the top.[11][12] Domes can be supported by an elliptical or circular wall called a "drum". If this structure extends to ground level, the round building may be called a "rotunda".[13] Drums are also called "tholobates" and may or may not contain windows. A "tambour" or "lantern" is the equivalent structure over a dome's oculus, supporting a cupola.[14]

When the base of the dome does not match the plan of the supporting walls beneath it (for example, a dome's circular base over a square bay), techniques are employed to bridge the two.[15] One technique is to use corbelling, progressively projecting horizontal layers from the top of the supporting wall to the base of the dome, such as the corbelled triangles often used in Seljuk and Ottoman architecture.[16] The simplest technique is to use diagonal lintels across the corners of the walls to create an octagonal base. Another is to use arches to span the corners, which can support more weight.[17] A variety of these techniques use what are called "squinches".[18] A squinch can be a single arch or a set of multiple projecting nested arches placed diagonally over an internal corner.[19] Squinches can take a variety of other forms, as well, including trumpet arches and niche heads, or half-domes.[18] The invention of pendentives superseded the squinch technique.[17] Pendentives are triangular sections of a sphere, like concave spandrels between arches, and transition from the corners of a square bay to the circular base of a dome. The curvature of the pendentives is that of a sphere with a diameter equal to the diagonal of the square bay.[20]

Materials edit

The earliest domes in the Middle East were built with mud-brick and, eventually, with baked brick and stone. Domes of wood allowed for wide spans due to the relatively light and flexible nature of the material and were the normal method for domed churches by the 7th century, although most domes were built with the other less flexible materials. Wooden domes were protected from the weather by roofing, such as copper or lead sheeting.[21] Domes of cut stone were more expensive and never as large, and timber was used for large spans where brick was unavailable.[22]

Roman concrete used an aggregate of stone with a powerful mortar. The aggregate transitioned over the centuries to pieces of fired clay, then to Roman bricks. By the sixth century, bricks with large amounts of mortar were the principle vaulting materials. Pozzolana appears to have only been used in central Italy.[23] Brick domes were the favored choice for large-space monumental coverings until the Industrial Age, due to their convenience and dependability.[24] Ties and chains of iron or wood could be used to resist stresses.[25]

The new building materials of the 19th century and a better understanding of the forces within structures from the 20th century opened up new possibilities. Iron and steel beams, steel cables, and pre-stressed concrete eliminated the need for external buttressing and enabled much thinner domes. Whereas earlier masonry domes may have had a radius to thickness ratio of 50, the ratio for modern domes can be in excess of 800. The lighter weight of these domes not only permitted far greater spans, but also allowed for the creation of large movable domes over modern sports stadiums.[26]

Experimental rammed earth domes were made as part of work on sustainable architecture at the University of Kassel in 1983.[27]

Shapes and internal forces edit

A masonry dome produces thrusts downward and outward. They are thought of in terms of two kinds of forces at right angles from one another: meridional forces (like the meridians, or lines of longitude, on a globe) are compressive only, and increase towards the base, while hoop forces (like the lines of latitude on a globe) are in compression at the top and tension at the base, with the transition in a hemispherical dome occurring at an angle of 51.8 degrees from the top.[28] The thrusts generated by a dome are directly proportional to the weight of its materials.[29] Grounded hemispherical domes generate significant horizontal thrusts at their haunches.[30]

The outward thrusts in the lower portion of a hemispherical masonry dome can be counteracted with the use of chains incorporated around the circumference or with external buttressing, although cracking along the meridians is natural.[28] For small or tall domes with less horizontal thrust, the thickness of the supporting arches or walls can be enough to resist deformation, which is why drums tend to be much thicker than the domes they support.[31]

Unlike voussoir arches, which require support for each element until the keystone is in place, domes are stable during construction as each level is made a complete and self-supporting ring.[3] The upper portion of a masonry dome is always in compression and is supported laterally, so it does not collapse except as a whole unit and a range of deviations from the ideal in this shallow upper cap are equally stable.[32] Because voussoir domes have lateral support, they can be made much thinner than corresponding arches of the same span. For example, a hemispherical dome can be 2.5 times thinner than a semicircular arch, and a dome with the profile of an equilateral arch can be thinner still.[33]

The optimal shape for a masonry dome of equal thickness provides for perfect compression, with none of the tension or bending forces against which masonry is weak.[30] For a particular material, the optimal dome geometry is called the funicular surface, the comparable shape in three dimensions to a catenary curve for a two-dimensional arch.[34][35] Adding a weight to the top of a pointed dome, such as the heavy cupola at the top of Florence Cathedral, changes the optimal shape to more closely match the actual pointed shape of the dome. The pointed profiles of many Gothic domes more closely approximate the optimal dome shape than do hemispheres, which were favored by Roman and Byzantine architects due to the circle being considered the most perfect of forms.[36]

Symbolism edit

According to E. Baldwin Smith, from the late Stone Age the dome-shaped tomb was used as a reproduction of the ancestral, god-given shelter made permanent as a venerated home of the dead. The instinctive desire to do this resulted in widespread domical mortuary traditions across the ancient world, from the stupas of India to the tholos tombs of Iberia. By Hellenistic and Roman times, the domical tholos had become the customary cemetery symbol.[37]

Domes and tent-canopies were also associated with the heavens in Ancient Persia and the Hellenistic-Roman world. A dome over a square base reflected the geometric symbolism of those shapes. The circle represented perfection, eternity, and the heavens. The square represented the earth. An octagon was intermediate between the two.[38] The distinct symbolism of the heavenly or cosmic tent stemming from the royal audience tents of Achaemenid and Indian rulers was adopted by Roman rulers in imitation of Alexander the Great, becoming the imperial baldachin. This probably began with Nero, whose "Golden House" also made the dome a feature of palace architecture.[39]

The dual sepulchral and heavenly symbolism was adopted by early Christians in both the use of domes in architecture and in the ciborium, a domical canopy like the baldachin used as a ritual covering for relics or the church altar. The celestial symbolism of the dome, however, was the preeminent one by the Christian era.[40] In the early centuries of Islam, domes were closely associated with royalty. A dome built in front of the mihrab of a mosque, for example, was at least initially meant to emphasize the place of a prince during royal ceremonies. Over time such domes became primarily focal points for decoration or the direction of prayer. The use of domes in mausoleums can likewise reflect royal patronage or be seen as representing the honor and prestige that domes symbolized, rather than having any specific funerary meaning.[41] The wide variety of dome forms in medieval Islam reflected dynastic, religious, and social differences as much as practical building considerations.[21]

Acoustics edit

Because domes are concave from below, they can reflect sound and create echoes.[42] A dome may have a "whispering gallery" at its base that at certain places transmits distinct sound to other distant places in the gallery.[14] The half-domes over the apses of Byzantine churches helped to project the chants of the clergy.[43] Although this can complement music, it may make speech less intelligible, leading Francesco Giorgi in 1535 to recommend vaulted ceilings for the choir areas of a church, but a flat ceiling filled with as many coffers as possible for where preaching would occur.[44]

Cavities in the form of jars built into the inner surface of a dome may serve to compensate for this interference by diffusing sound in all directions, eliminating echoes while creating a "divine effect in the atmosphere of worship." This technique was written about by Vitruvius in his Ten Books on Architecture, which describes bronze and earthenware resonators.[42] The material, shape, contents, and placement of these cavity resonators determine the effect they have: reinforcing certain frequencies or absorbing them.[45]

Types edit

Beehive dome edit

Also called a corbelled dome,[46] or false dome,[47] these are different from a 'true dome' in that they consist of purely horizontal layers. As the layers get higher, each is slightly cantilevered, or corbeled, toward the center until meeting at the top. A monumental example is the Mycenaean Treasury of Atreus from the late Bronze Age.[48]

Braced dome edit

A single or double layer space frame in the form of a dome,[49] a braced dome is a generic term that includes ribbed,[50] Schwedler,[50] three-way grid,[50] lamella or Kiewitt,[51] lattice,[52] and geodesic domes.[53] The different terms reflect different arrangements in the surface members. Braced domes often have a very low weight and are usually used to cover spans of up to 150 meters.[54] Often prefabricated, their component members can either lie on the dome's surface of revolution, or be straight lengths with the connecting points or nodes lying upon the surface of revolution. Single-layer structures are called frame or skeleton types and double-layer structures are truss types, which are used for large spans. When the covering also forms part of the structural system, it is called a stressed skin type. The formed surface type consists of sheets joined at bent edges to form the structure.[49]

Cloister vault edit

Also called domical vaults (a term sometimes also applied to sail vaults),[55][56] polygonal domes,[57] coved domes,[58] gored domes,[59] segmental domes[60] (a term sometimes also used for saucer domes), paneled vaults,[61] or pavilion vaults,[62] these are domes that maintain a polygonal shape in their horizontal cross section. The earliest known examples date to the first century BC, such as the Tabularium of Rome from 78 BC. Others include the Baths of Antoninus in Carthage (145–160) and the Palatine Chapel at Aachen (13th – 14th century).[63] The most famous example is the Renaissance octagonal dome of Filippo Brunelleschi over the Florence Cathedral. Thomas Jefferson, the third president of the United States, installed an octagonal dome above the West front of his plantation house, Monticello.[64]

Compound dome edit

Also called domes on pendentives[65] or pendentive domes[66] (a term also applied to sail vaults), compound domes have pendentives that support a smaller diameter dome immediately above them, as in the Hagia Sophia, or a drum and dome, as in many Renaissance and post-Renaissance domes, with both forms resulting in greater height.[7]

Crossed-arch dome edit

One of the earliest types of ribbed vault, the first known examples are found in the Great Mosque of Córdoba in the 10th century. Rather than meeting in the center of the dome, the ribs characteristically intersect one another off-center, forming an empty polygonal space in the center. Geometry is a key element of the designs, with the octagon being perhaps the most popular shape used. Whether the arches are structural or purely decorative remains a matter of debate. The type may have an eastern origin, although the issue is also unsettled. Examples are found in Spain, North Africa, Armenia, Iran, France, and Italy.[67]

 
A corbel dome
 
A domical vault
 
A compound dome
 
A crossed-arch dome

Ellipsoidal dome edit

The ellipsoidal dome is a surface formed by the rotation around a vertical axis of a semi-ellipse. Like other "rotational domes" formed by the rotation of a curve around a vertical axis, ellipsoidal domes have circular bases and horizontal sections and are a type of "circular dome" for that reason.[68]

Geodesic dome edit

Geodesic domes are the upper portion of geodesic spheres. They are composed of a framework of triangles in a polyhedron pattern.[69] The structures are named for geodesics and are based upon geometric shapes such as icosahedrons, octahedrons or tetrahedrons.[69][3] Such domes can be created using a limited number of simple elements and joints and efficiently resolve a dome's internal forces. Their efficiency is said to increase with size.[70] Although not first invented by Buckminster Fuller, they are associated with him because he designed many geodesic domes and patented them in the United States.[71]

Hemispherical dome edit

The hemispherical dome is a surface formed by the rotation around a vertical axis of a semicircle. Like other "rotational domes" formed by the rotation of a curve around a vertical axis, hemispherical domes have circular bases and horizontal sections and are a type of "circular dome" for that reason. They experience vertical compression along their meridians, but horizontally experience compression only in the portion above 51.8 degrees from the top. Below this point, hemispherical domes experience tension horizontally, and usually require buttressing to counteract it.[68] According to E. Baldwin Smith, it was a shape likely known to the Assyrians, defined by Greek theoretical mathematicians, and standardized by Roman builders.[72]

Onion dome edit

Bulbous domes bulge out beyond their base diameters, offering a profile greater than a hemisphere.[3] An onion dome is a greater than hemispherical dome with a pointed top in an ogee profile.[3] They are found in the Near East, Middle East, Persia, and India and may not have had a single point of origin. Their appearance in northern Russian architecture predates the Tatar occupation of Russia and so is not easily explained as the result of that influence.[73] They became popular in the second half of the 15th century in the Low Countries of Northern Europe, possibly inspired by the finials of minarets in Egypt and Syria, and developed in the 16th and 17th centuries in the Netherlands before spreading to Germany, becoming a popular element of the baroque architecture of Central Europe. German bulbous domes were also influenced by Russian and Eastern European domes.[74] The examples found in various European architectural styles are typically wooden.[3] Examples include Kazan Church in Kolomenskoye and the Brighton Pavilion by John Nash.[3] In Islamic architecture, they are typically made of masonry, rather than timber, with the thick and heavy bulging portion serving to buttress against the tendency of masonry domes to spread at their bases. The Taj Mahal is a famous example.[3]

Oval dome edit

An oval dome is a dome of oval shape in plan, profile, or both. The term comes from the Latin ovum, meaning "egg". The earliest oval domes were used by convenience in corbelled stone huts as rounded but geometrically undefined coverings, and the first examples in Asia Minor date to around 4000 B.C. The geometry was eventually defined using combinations of circular arcs, transitioning at points of tangency. If the Romans created oval domes, it was only in exceptional circumstances. The Roman foundations of the oval plan Church of St. Gereon in Cologne point to a possible example. Domes in the Middle Ages also tended to be circular, though the church of Santo Tomás de las Ollas in Spain has an oval dome over its oval plan. Other examples of medieval oval domes can be found covering rectangular bays in churches. Oval plan churches became a type in the Renaissance and popular in the Baroque style.[75] The dome built for the basilica of Vicoforte by Francesco Gallo was one of the largest and most complex ever made.[76] Although the ellipse was known, in practice, domes of this shape were created by combining segments of circles. Popular in the 16th and 17th centuries, oval and elliptical plan domes can vary their dimensions in three axes or two axes.[citation needed] A sub-type with the long axis having a semicircular section is called a Murcia dome, as in the Chapel of the Junterones at Murcia Cathedral. When the short axis has a semicircular section, it is called a Melon dome.[citation needed]

 
A geodesic dome, Montreal, Canada
 
A hemispherical dome illustration
 
An oval dome, Rome, Italy

Paraboloid dome edit

A paraboloid dome is a surface formed by the rotation around a vertical axis of a sector of a parabola. Like other "rotational domes" formed by the rotation of a curve around a vertical axis, paraboloid domes have circular bases and horizontal sections and are a type of "circular dome" for that reason. Because of their shape, paraboloid domes experience only compression, both radially and horizontally.[68]

Sail dome edit

Also called sail vaults,[77] handkerchief vaults,[78] domical vaults (a term sometimes also applied to cloister vaults),[56] pendentive domes[79][80] (a term that has also been applied to compound domes), Bohemian vaults,[81] or Byzantine domes,[citation needed] this type can be thought of as pendentives that, rather than merely touching each other to form a circular base for a drum or compound dome, smoothly continue their curvature to form the dome itself. The dome gives the impression of a square sail pinned down at each corner and billowing upward.[15] These can also be thought of as saucer domes upon pendentives.[60] Sail domes are based upon the shape of a hemisphere and are not to be confused with elliptic parabolic vaults, which appear similar but have different characteristics.[68] In addition to semicircular sail vaults there are variations in geometry such as a low rise to span ratio or covering a rectangular plan. Sail vaults of all types have a variety of thrust conditions along their borders, which can cause problems, but have been widely used from at least the sixteenth century. The second floor of the Llotja de la Seda is covered by a series of nine meter wide sail vaults.[citation needed]

Saucer dome edit

Also called segmental domes[82] (a term sometimes also used for cloister vaults), or calottes,[15] these have profiles of less than half a circle. Because they reduce the portion of the dome in tension, these domes are strong but have increased radial thrust.[82] Many of the largest existing domes are of this shape.

Masonry saucer domes, because they exist entirely in compression, can be built much thinner than other dome shapes without becoming unstable. The trade-off between the proportionately increased horizontal thrust at their abutments and their decreased weight and quantity of materials may make them more economical, but they are more vulnerable to damage from movement in their supports.[83]

Umbrella dome edit

Also called gadrooned,[84] fluted,[84] organ-piped,[84] pumpkin,[15] melon,[15] ribbed,[84] parachute,[15] scalloped,[85] or lobed domes,[86] these are a type of dome divided at the base into curved segments, which follow the curve of the elevation.[15] "Fluted" may refer specifically to this pattern as an external feature, such as was common in Mamluk Egypt.[3] The "ribs" of a dome are the radial lines of masonry that extend from the crown down to the springing.[11] The central dome of the Hagia Sophia uses the ribbed method, which accommodates a ring of windows between the ribs at the base of the dome. The central dome of St. Peter's Basilica also uses this method.

 
A sail vault illustration
 
A saucer dome, Louisiana, U.S.
 
An umbrella dome, Florence, Italy

History edit

Early history and simple domes edit

 
Apache wigwam, by Edward S. Curtis, c. 1903

Cultures from pre-history to modern times constructed domed dwellings using local materials. Although it is not known when the first dome was created, sporadic examples of early domed structures have been discovered. The earliest discovered may be four small dwellings made of Mammoth tusks and bones. The first was found by a farmer in Mezhirich, Ukraine, in 1965 while he was digging in his cellar and archaeologists unearthed three more.[87] They date from 19,280 – 11,700 BC.[88]

In modern times, the creation of relatively simple dome-like structures has been documented among various indigenous peoples around the world. The wigwam was made by Native Americans using arched branches or poles covered with grass or hides. The Efé people of central Africa construct similar structures, using leaves as shingles.[89] Another example is the igloo, a shelter built from blocks of compact snow and used by the Inuit, among others. The Himba people of Namibia construct "desert igloos" of wattle and daub for use as temporary shelters at seasonal cattle camps, and as permanent homes by the poor.[90] Extraordinarily thin domes of sun-baked clay 20 feet in diameter, 30 feet high, and nearly parabolic in curve, are known from Cameroon.[91]

The historical development from structures like these to more sophisticated domes is not well documented. That the dome was known to early Mesopotamia may explain the existence of domes in both China and the West in the first millennium BC.[92] Another explanation, however, is that the use of the dome shape in construction did not have a single point of origin and was common in virtually all cultures long before domes were constructed with enduring materials.[93]

Corbelled stone domes have been found from the Neolithic period in the ancient Near East, and in the Middle East to Western Europe from antiquity. [94][95] The kings of Achaemenid Persia held audiences and festivals in domical tents derived from the nomadic traditions of central Asia.[96] Simple domical mausoleums existed in the Hellenistic period.[97] The remains of a large domed circular hall in the Parthian capital city of Nyssa has been dated to perhaps the first century AD, showing "...the existence of a monumental domical tradition in Central Asia that had hitherto been unknown and which seems to have preceded Roman Imperial monuments or at least to have grown independently from them."[98] It likely had a wooden dome.[99]

 
Etchmiadzin cathedral, dome.

Persian domes edit

 
Sheikh Lotfallah Mosque, Isfahan, Iran.

Persian architecture likely inherited an architectural tradition of dome-building dating back to the earliest Mesopotamian domes.[100] Due to the scarcity of wood in many areas of the Iranian plateau and Greater Iran, domes were an important part of vernacular architecture throughout Persian history.[101] The Persian invention of the squinch, a series of concentric arches forming a half-cone over the corner of a room, enabled the transition from the walls of a square chamber to an octagonal base for a dome in a way reliable enough for large constructions and domes moved to the forefront of Persian architecture as a result.[102] Pre-Islamic domes in Persia are commonly semi-elliptical, with pointed domes and those with conical outer shells being the majority of the domes in the Islamic periods.[103]

The area of north-eastern Iran was, along with Egypt, one of two areas notable for early developments in Islamic domed mausoleums, which appear in the tenth century.[104] The Samanid Mausoleum in Transoxiana dates to no later than 943 and is the first to have squinches create a regular octagon as a base for the dome, which then became the standard practice. Cylindrical or polygonal plan tower tombs with conical roofs over domes also exist beginning in the 11th century.[101]

The Seljuk Empire's notables built tomb-towers, called "Turkish Triangles", as well as cube mausoleums covered with a variety of dome forms. Seljuk domes included conical, semi-circular, and pointed shapes in one or two shells. Shallow semi-circular domes are mainly found from the Seljuk era. The double-shell domes were either discontinuous or continuous.[105] The domed enclosure of the Jameh Mosque of Isfahan, built in 1086-7 by Nizam al-Mulk, was the largest masonry dome in the Islamic world at that time, had eight ribs, and introduced a new form of corner squinch with two quarter domes supporting a short barrel vault. In 1088 Tāj-al-Molk, a rival of Nizam al-Mulk, built another dome at the opposite end of the same mosque with interlacing ribs forming five-pointed stars and pentagons. This is considered the landmark Seljuk dome, and may have inspired subsequent patterning and the domes of the Il-Khanate period. The use of tile and of plain or painted plaster to decorate dome interiors, rather than brick, increased under the Seljuks.[101]

Beginning in the Ilkhanate, Persian domes achieved their final configuration of structural supports, zone of transition, drum, and shells, and subsequent evolution was restricted to variations in form and shell geometry. Characteristic of these domes are the use of high drums and several types of discontinuous double-shells, and the development of triple-shells and internal stiffeners occurred at this time. The construction of tomb towers decreased.[106] The 7.5 meter wide double dome of Soltan Bakht Agha Mausoleum (1351–1352) is the earliest known example in which the two shells of the dome have significantly different profiles, which spread rapidly throughout the region.[107] The development of taller drums also continued into the Timurid period.[101] The large, bulbous, fluted domes on tall drums that are characteristic of 15th century Timurid architecture were the culmination of the Central Asian and Iranian tradition of tall domes with glazed tile coverings in blue and other colors.[21]

The domes of the Safavid dynasty (1501–1732) are characterized by a distinctive bulbous profile and are considered the last generation of Persian domes. They are generally thinner than earlier domes and are decorated with a variety of colored glazed tiles and complex vegetal patterns, and they were influential on those of other Islamic styles, such as the Mughal architecture of India.[108] An exaggerated style of onion dome on a short drum, as can be seen at the Shah Cheragh (1852–1853), first appeared in the Qajar period. Domes have remained important in modern mausoleums, and domed cisterns and icehouses remain common sights in the countryside.[101]

Chinese domes edit

 
Model of the Lei Cheng Uk Han Tomb (25–220 AD)

Very little has survived of ancient Chinese architecture, due to the extensive use of timber as a building material. Brick and stone vaults used in tomb construction have survived, and the corbeled dome was used, rarely, in tombs and temples.[109] The earliest true domes found in Chinese tombs were shallow cloister vaults, called simian jieding, derived from the Han use of barrel vaulting. Unlike the cloister vaults of western Europe, the corners are rounded off as they rise.[110] The first known example is a brick tomb dating from the end of the Western Han period, near the modern city of Xiangcheng in Henan Province. These four-sided domes used small interlocking bricks and enabled a square space near the entrance of a tomb large enough for several people that may have been used for funeral ceremonies. The interlocking brick technique was rapidly adopted and four-sided domes became widespread outside Henan by the end of the first century AD. [111]

A model of a tomb found with a shallow true dome from the late Han Dynasty (206 BC – 220 AD) can be seen at the Guangzhou Museum (Canton).[112] Another, the Lei Cheng Uk Han Tomb, found in Hong Kong in 1955, has a design common among Eastern Han Dynasty (25 AD – 220 AD) tombs in South China: a barrel vaulted entrance leading to a domed front hall with barrel vaulted chambers branching from it in a cross shape. It is the only such tomb that has been found in Hong Kong and is exhibited as part of the Hong Kong Museum of History.[113][114]

During the Three Kingdoms period (220–280), the "cross-joint dome" (siyuxuanjinshi) was developed under the Wu and Western Jin dynasties south of the Yangtze River, with arcs building out from the corners of a square room until they met and joined at the center. These domes were stronger, had a steeped angle, and could cover larger areas than the relatively shallow cloister vaults. Over time, they were made taller and wider. There were also corbel vaults, called diese, although these are the weakest type.[115] Some tombs of the Song Dynasty (960–1279) have beehive domes.[112]

Roman and Byzantine domes edit

 
Painting by Giovanni Paolo Pannini of the Pantheon in Rome.

Roman domes are found in baths, villas, palaces, and tombs. oculi are common features.[116] They are customarily hemispherical in shape and partially or totally concealed on the exterior. To buttress the horizontal thrusts of a large hemispherical masonry dome, the supporting walls were built up beyond the base to at least the haunches of the dome, and the dome was then also sometimes covered with a conical or polygonal roof.[117]

Domes reached monumental size in the Roman Imperial period.[118] Roman baths played a leading role in the development of domed construction in general, and monumental domes in particular. Modest domes in baths dating from the 2nd and 1st centuries BC are seen in Pompeii, in the cold rooms of the Terme Stabiane and the Terme del Foro.[118][119] However, the extensive use of domes did not occur before the 1st century AD.[120] The growth of domed construction increases under Emperor Nero and the Flavians in the 1st century AD, and during the 2nd century. Centrally-planned halls become increasingly important parts of palace and palace villa layouts beginning in the 1st century, serving as state banqueting halls, audience rooms, or throne rooms.[121] The Pantheon, a temple in Rome completed by Emperor Hadrian as part of the Baths of Agrippa, is the most famous, best preserved, and largest Roman dome.[122] Segmented domes, made of radially concave wedges or of alternating concave and flat wedges, appear under Hadrian in the 2nd century and most preserved examples of this style date from this period.[123]

In the 3rd century, Imperial mausoleums began to be built as domed rotundas, rather than as tumulus structures or other types, following similar monuments by private citizens.[124] The technique of building lightweight domes with interlocking hollow ceramic tubes further developed in North Africa and Italy in the late third and early fourth centuries.[125] In the 4th century, Roman domes proliferated due to changes in the way domes were constructed, including advances in centering techniques and the use of brick ribbing.[126] The material of choice in construction gradually transitioned during the 4th and 5th centuries from stone or concrete to lighter brick in thin shells.[127] Baptisteries began to be built in the manner of domed mausoleums during the 4th century in Italy. The octagonal Lateran baptistery or the baptistery of the Holy Sepulchre may have been the first, and the style spread during the 5th century.[128] By the 5th century, structures with small-scale domed cross plans existed across the Christian world.[129]

With the end of the Western Roman Empire, domes became a signature feature of the church architecture of the surviving Eastern Roman — or "Byzantine" — Empire.[130] 6th-century church building by the Emperor Justinian used the domed cross unit on a monumental scale, and his architects made the domed brick-vaulted central plan standard throughout the Roman east. This divergence with the Roman west from the second third of the 6th century may be considered the beginning of a "Byzantine" architecture.[131] Justinian's Hagia Sophia was an original and innovative design with no known precedents in the way it covers a basilica plan with dome and semi-domes. Periodic earthquakes in the region have caused three partial collapses of the dome and necessitated repairs.[132]

 
Originally a church, Hagia Sophia (532–537) by Byzantine emperor Justinian the Great was the largest cathedral in the world for nearly a thousand years.

"Cross-domed units", a more secure structural system created by bracing a dome on all four sides with broad arches, became a standard element on a smaller scale in later Byzantine church architecture.[133][134] The Cross-in-square plan, with a single dome at the crossing or five domes in a quincunx pattern, became widely popular in the Middle Byzantine period (c. 843–1204).[135][136][133] It is the most common church plan from the tenth century until the fall of Constantinople in 1453.[137] Resting domes on circular or polygonal drums pierced with windows eventually became the standard style, with regional characteristics.[138]

In the Byzantine period, domes were normally hemispherical and had, with occasional exceptions, windowed drums. All of the surviving examples in Constantinople are ribbed or pumpkin domes, with the divisions corresponding to the number of windows. Roofing for domes ranged from simple ceramic tile to more expensive, more durable, and more form-fitting lead sheeting. Metal clamps between stone cornice blocks, metal tie rods, and metal chains were also used to stabilize domed construction.[139] The technique of using double shells for domes, although revived in the Renaissance, originated in Byzantine practice.[140]

Arabic and Western European domes edit

 
The Dome of the Rock in Jerusalem

The Syria and Palestine area has a long tradition of domical architecture, including wooden domes in shapes described as "conoid", or similar to pine cones. When the Arab Muslim forces conquered the region, they employed local craftsmen for their buildings and, by the end of the 7th century, the dome had begun to become an architectural symbol of Islam.[141] In addition to religious shrines, such as the Dome of the Rock, domes were used over the audience and throne halls of Umayyad palaces, and as part of porches, pavilions, fountains, towers and the calderia of baths. Blending the architectural features of both Byzantine and Persian architecture, the domes used both pendentives and squinches and were made in a variety of shapes and materials.[142] Although architecture in the region would decline following the movement of the capital to Iraq under the Abbasids in 750, mosques built after a revival in the late 11th century usually followed the Umayyad model.[143] Early versions of bulbous domes can be seen in mosaic illustrations in Syria dating to the Umayyad period. They were used to cover large buildings in Syria after the eleventh century.[144]

Italian church architecture from the late sixth century to the end of the eighth century was influenced less by the trends of Constantinople than by a variety of Byzantine provincial plans.[145] With the crowning of Charlemagne as a new Roman Emperor, Byzantine influences were largely replaced in a revival of earlier Western building traditions. Occasional exceptions include examples of early quincunx churches at Milan and near Cassino.[145] Another is the Palatine Chapel. Its domed octagon design was influenced by Byzantine models.[146][147] It was the largest dome north of the Alps at that time.[148] Venice, Southern Italy and Sicily served as outposts of Middle Byzantine architectural influence in Italy.[149]

The Great Mosque of Córdoba contains the first known examples of the crossed-arch dome type.[150] The use of corner squinches to support domes was widespread in Islamic architecture by the 10th and 11th centuries.[135] After the ninth century, mosques in North Africa often have a small decorative dome over the mihrab. Additional domes are sometimes used at the corners of the mihrab wall, at the entrance bay, or on the square tower minarets.[151] Egypt, along with north-eastern Iran, was one of two areas notable for early developments in Islamic mausoleums, beginning in the 10th century.[97] Fatimid mausoleums were mostly simple square buildings covered by a dome. Domes were smooth or ribbed and had a characteristic Fatimid "keel" shape profile.[152]

Domes in Romanesque architecture are generally found within crossing towers at the intersection of a church's nave and transept, which conceal the domes externally.[153] They are typically octagonal in plan and use corner squinches to translate a square bay into a suitable octagonal base.[8] They appear "in connection with basilicas almost throughout Europe" between 1050 and 1100.[154] The Crusades, beginning in 1095, also appear to have influenced domed architecture in Western Europe, particularly in the areas around the Mediterranean Sea.[155] The Knights Templar, headquartered at the site, built a series of centrally planned churches throughout Europe modeled on the Church of the Holy Sepulchre, with the Dome of the Rock also an influence.[156] In southwest France, there are over 250 domed Romanesque churches in the Périgord region alone.[157] The use of pendentives to support domes in the Aquitaine region, rather than the squinches more typical of western medieval architecture, strongly implies a Byzantine influence.[55] Gothic domes are uncommon due to the use of rib vaults over naves, and with church crossings usually focused instead by a tall steeple, but there are examples of small octagonal crossing domes in cathedrals as the style developed from the Romanesque.[158]

Star-shaped domes found at the Moorish palace of the Alhambra in Granada, Spain, the Hall of the Abencerrajes (c. 1333–91) and the Hall of the two Sisters (c. 1333–54), are extraordinarily developed examples of muqarnas domes.[158] In the first half of the fourteenth century, stone blocks replaced bricks as the primary building material in the dome construction of Mamluk Egypt and, over the course of 250 years, around 400 domes were built in Cairo to cover the tombs of Mamluk sultans and emirs.[159] Dome profiles were varied, with "keel-shaped", bulbous, ogee, stilted domes, and others being used. On the drum, angles were chamfered, or sometimes stepped, externally and triple windows were used in a tri-lobed arrangement on the faces.[160] Bulbous cupolas on minarets were used in Egypt beginning around 1330, spreading to Syria in the following century.[161] In the fifteenth century, pilgrimages to and flourishing trade relations with the Near East exposed the Low Countries of northwest Europe to the use of bulbous domes in the architecture of the Orient and such domes apparently became associated with the city of Jerusalem. Multi-story spires with truncated bulbous cupolas supporting smaller cupolas or crowns became popular in the sixteenth century.[162]

Russian domes edit

 
Gilded onion domes of the Cathedral of the Annunciation, Moscow Kremlin.

The multidomed church is a typical form of Russian church architecture that distinguishes Russia from other Orthodox nations and Christian denominations. Indeed, the earliest Russian churches, built just after the Christianization of Kievan Rus', were multi-domed, which has led some historians to speculate about how Russian pre-Christian pagan temples might have looked. Examples of these early churches are the 13-domed wooden Saint Sophia Cathedral in Novgorod (989) and the 25-domed stone Desyatinnaya Church in Kiev (989–996). The number of domes typically has a symbolical meaning in Russian architecture, for example 13 domes symbolize Christ with 12 Apostles, while 25 domes means the same with an additional 12 Prophets of the Old Testament. The multiple domes of Russian churches were often comparatively smaller than Byzantine domes.[163][164]

 
Saint Basil's Cathedral (1555–61) in Moscow, Russia. Its distinctive onion domes date to the 1680s.

Plentiful timber in Russia made wooden domes common and at least partially contributed to the popularity of onion domes, which were easier to shape in wood than in masonry.[165] The earliest stone churches in Russia featured Byzantine style domes, however by the Early Modern era the onion dome had become the predominant form in traditional Russian architecture. The onion dome is a dome whose shape resembles an onion, after which they are named. Such domes are often larger in diameter than the drums they sit on, and their height usually exceeds their width. The whole bulbous structure tapers smoothly to a point. Though the earliest preserved Russian domes of such type date from the 16th century, illustrations from older chronicles indicate they have existed since the late 13th century. Like tented roofs—which were combined with, and sometimes replaced domes in Russian architecture since the 16th century—onion domes initially were used only in wooden churches. Builders introduced them into stone architecture much later, and continued to make their carcasses of either of wood or metal on top of masonry drums.[166]

Russian domes are often gilded or brightly painted. A dangerous technique of chemical gilding using mercury had been applied on some occasions until the mid-19th century, most notably in the giant dome of Saint Isaac's Cathedral. The more modern and safe method of gold electroplating was applied for the first time in gilding the domes of the Cathedral of Christ the Saviour in Moscow, the tallest Eastern Orthodox church in the world.[167]

Ottoman domes edit

 
Selimiye Mosque dome in Edirne, Turkey

The rise of the Ottoman Empire and its spread in Asia Minor and the Balkans coincided with the decline of the Seljuk Turks and the Byzantine Empire. Early Ottoman buildings, for almost two centuries after 1300, were characterized by a blending of Ottoman culture and indigenous architecture, and the pendentive dome was used throughout the empire.[168] The Byzantine dome form was adopted and further developed.[21] Ottoman architecture made exclusive use of the semi-spherical dome for vaulting over even very small spaces, influenced by the earlier traditions of both Byzantine Anatolia and Central Asia.[169] The smaller the structure, the simpler the plan, but mosques of medium size were also covered by single domes.[170] The earliest Ottoman mosques were single oblong rooms with either simple tiled pitched roofs of wood or a wooden interior dome. Most of these wooden domes have been lost to fires and replaced by flat ceilings. The earliest masonry domes covered square single room mosques, the archetype of Ottoman architecture.[citation needed] Examples include the Mosque of Orhan Gazi in Gebze and Karagöz Bey Mosque in Mostar.[171] This domed-square unit is the defining element of the three basic Ottoman mosque plans: the single unit mosque, multi-unit mosque, and eyvan (or "iwan") mosque.[citation needed]

The multi-unit mosque uses several domed-squares of similar size along the length of a mosque, or across its width, or both, with the central dome sometimes larger than the others.[citation needed] A style common in the Bursa period, and known as the "Bursa type", is like a duplication of the single-domed square, with one long space divided by an arch into two square bays that are each covered by a dome. A variation of this type has the room covered by one dome and one semi-dome, with additional side chambers. A multi-domed style derived from Seljuk architecture is that of the Ulu Camii, or Great Mosque, which consists of a number of domes of the same size supported by pillars.[citation needed]

The eyvan mosque type (the eyvan being derived from Seljuk architecture) uses domed-square units in a variety of sizes, heights, and details, with only the possible pair of side units being similar sizes.[citation needed]

Early experiments with large domes include the domed square mosques of Çine and Mudurnu under Bayezid I, and the later domed "zawiya-mosques" at Bursa. The Üç Şerefeli Mosque at Edirne developed the idea of the central dome being a larger version of the domed modules used throughout the rest of the structure to generate open space. This idea became important to the Ottoman style as it developed.[169]

 
Blue Mosque in Istanbul, a World Heritage Site and example of the classical style period of Ottoman architecture, showing Byzantine influence.

The Beyazidiye Mosque (1501–1506) in Istanbul begins the Classical period in Ottoman architecture, in which the great Imperial Mosques, with variations, resemble the former Byzantine basilica of Hagia Sophia in having a large central dome with semi-domes of the same span to the east and west.[citation needed] Hagia Sophia's central dome arrangement is faithfully reproduced in three Ottoman mosques in Istanbul: the Beyazidiye Mosque, the Kılıç Ali Pasha Mosque, and the Süleymaniye Mosque.[172] Three other Imperial mosques in Istanbul also add semi-domes to the north and south, doing away with the basilica plan: Şehzade Camii, Sultan Ahmed I Camii, and Yeni Cami.[citation needed] The peak of this classical period, which lasted into the 17th century, came with the architecture of Mimar Sinan.[citation needed] In addition to large Imperial mosques, he produced hundreds of other monuments, including medium-sized mosques such as the Mihrimah, Sokollu, and Rüstem Pasha Mosque and the tomb of Suleiman the Magnificent.[173] Süleymaniye Mosque, built in Constantinople (modern Istanbul) from 1550 to 1557, has a main dome 53 meters high with a diameter of 26.5 meters. At the time it was built, the dome was the highest in the Ottoman Empire when measured from sea level, but lower from the floor of the building and smaller in diameter than that of the nearby Hagia Sophia.

Another Classical domed mosque type is, like the Byzantine church of Sergius and Bacchus, the domed polygon within a square. Octagons and hexagons were common, such as those of Üç Şerefeli Mosque (1437–1447) and Selimiye Mosque in Edirne.[citation needed] The Selimiye Mosque was the first structure built by the Ottomans that had a larger dome than that of the Hagia Sophia. The dome rises above a square bay. Corner semi-domes convert this into an octagon, which muqarnas transition to a circular base. The dome has an average internal diameter of about 31.5 meters, while that of Hagia Sophia averages 31.3 meters.[174] Designed and built by architect Mimar Sinan between 1568 and 1574, when he finished it he was 86 years old, and he considered the mosque his masterpiece.

The first large Imperial Mosque of Istanbul in the imported Baroque style was the Nuruosmaniye Mosque (1748–1755). One of the finest was the Laleli Mosque of 1759–1764.[citation needed]

Italian Renaissance domes edit

 
The Cathedral of Florence with Brunelleschi's dome, Italy

Filippo Brunelleschi's octagonal brick domical vault over Florence Cathedral was built between 1420 and 1436 and the lantern surmounting the dome was completed in 1467. The dome is 42 meters wide and made of two shells.[175] The dome is not itself Renaissance in style, although the lantern is closer.[176] A combination of dome, drum, pendentives, and barrel vaults developed as the characteristic structural forms of large Renaissance churches following a period of innovation in the later fifteenth century.[177] Florence was the first Italian city to develop the new style, followed by Rome and then Venice.[178] Brunelleschi's domes at San Lorenzo and the Pazzi Chapel established them as a key element of Renaissance architecture.[179] His plan for the dome of the Pazzi Chapel in Florence's Basilica of Santa Croce (1430–52) illustrates the Renaissance enthusiasm for geometry and for the circle as geometry's supreme form. This emphasis on geometric essentials would be very influential.[180]

De re aedificatoria, written by Leon Battista Alberti around 1452, recommends vaults with coffering for churches, as in the Pantheon, and the first design for a dome at St. Peter's Basilica in Rome is usually attributed to him, although the recorded architect is Bernardo Rossellino. This would culminate in Bramante's 1505–06 projects for a wholly new St. Peter's Basilica, marking the beginning of the displacement of the Gothic ribbed vault with the combination of dome and barrel vault, which proceeded throughout the sixteenth century.[181] Bramante's initial design was for a Greek cross plan with a large central hemispherical dome and four smaller domes around it in a quincunx pattern. Work began in 1506 and continued under a succession of builders over the next 120 years.[182] The dome was completed by Giacomo della Porta and Domenico Fontana.[182] The publication of Sebastiano Serlio's treatise, one of the most popular architectural treatises ever published, was responsible for the spread of the oval in late Renaissance and Baroque architecture throughout Italy, Spain, France, and central Europe.[183]

The Villa Capra, also known as "La Rotunda", was built by Andrea Palladio from 1565 to 1569 near Vicenza. Its highly symmetrical square plan centers on a circular room covered by a dome, and it proved highly influential on the Georgian architects of 18th century England, architects in Russia, and architects in America, Thomas Jefferson among them. Palladio's two domed churches in Venice are San Giorgio Maggiore (1565–1610) and Il Redentore (1577–92), the latter built in thanksgiving for the end of a bad outbreak of plague in the city.[184] The spread of the Renaissance-style dome outside of Italy began with central Europe, although there was often a stylistic delay of a century or two.[185]

South Asian domes edit

 
The Taj Mahal in Agra, India has large onion dome

Domes first appeared in South Asia during the medieval era. They were generally constructed with stone, brick and mortar, and iron dowels and cramps. Centering was made from timber and bamboo. The use of iron cramps to join adjacent stones was known in Classical India, and was used at the base of domes for hoop reinforcement. The synthesis of styles created by this introduction of new forms to the Hindu tradition of trabeate construction created a distinctive architecture.[186] Domes in pre-Mughal India have a standard squat circular shape with a lotus design and bulbous finial at the top, derived from Hindu architecture. Because the Hindu architectural tradition did not include arches, flat corbels were used to transition from the corners of the room to the dome, rather than squinches.[21] In contrast to Persian and Ottoman domes, the domes of Indian tombs tend to be more bulbous.[187]

 
The Shah Jahan Mosque's main dome in Thatta, Pakistan, has tiles arranged in a stellate pattern to represent the night sky.

The earliest examples include the half-domes of the late 13th century tomb of Balban and the small dome of the tomb of Khan Shahid, which were made of roughly cut material and would have needed covering surface finishes.[188] Under the Lodi dynasty there was a large proliferation of tomb building, with octagonal plans reserved for royalty and square plans used for others of high rank, and the first double dome was introduced to India in this period.[189] The first major Mughal building is the domed tomb of Humayun, built between 1562 and 1571 by a Persian architect. The central double dome covers an octagonal central chamber about 15 meters wide and is accompanied by small domed chattri made of brick and faced with stone.[190] Chatris, the domed kiosks on pillars characteristic of Mughal roofs, were adopted from their Hindu use as cenotaphs.[191] The fusion of Persian and Indian architecture can be seen in the dome shape of the Taj Mahal: the bulbous shape derives from Persian Timurid domes, and the finial with lotus leaf base is derived from Hindu temples.[21] The Gol Gumbaz, or Round Dome, is one of the largest masonry domes in the world. It has an internal diameter of 41.15 meters and a height of 54.25 meters.[192] The dome was the most technically advanced built in the Deccan.[193] The last major Islamic tomb built in India was the tomb of Safdar Jang (1753–54). The central dome is reportedly triple-shelled, with two relatively flat inner brick domes and an outer bulbous marble dome, although it may actually be that the marble and second brick domes are joined everywhere but under the lotus leaf finial at the top.[194]

Early modern period domes edit

 
The dome of St Paul's Cathedral in London

In the early sixteenth century, the lantern of the Italian dome spread to Germany, gradually adopting the bulbous cupola from the Netherlands.[195] Russian architecture strongly influenced the many bulbous domes of the wooden churches of Bohemia and Silesia and, in Bavaria, bulbous domes less resemble Dutch models than Russian ones. Domes like these gained in popularity in central and southern Germany and in Austria in the seventeenth and eighteenth centuries, particularly in the Baroque style, and influenced many bulbous cupolas in Poland and Eastern Europe in the Baroque period. However, many bulbous domes in eastern Europe were replaced over time in the larger cities during the second half of the eighteenth century in favor of hemispherical or stilted cupolas in the French or Italian styles.[196]

The construction of domes in the sixteenth and seventeenth centuries relied primarily on empirical techniques and oral traditions rather than the architectural treatises of the times, which avoided practical details. This was adequate for domes up to medium size, with diameters in the range of 12 to 20 meters. Materials were considered homogeneous and rigid, with compression taken into account and elasticity ignored. The weight of materials and the size of the dome were the key references. Lateral tensions in a dome were counteracted with horizontal rings of iron, stone, or wood incorporated into the structure.[197]

Over the course of the seventeenth and eighteenth centuries, developments in mathematics and the study of statics led to a more precise formalization of the ideas of the traditional constructive practices of arches and vaults, and there was a diffusion of studies on the most stable form for these structures: the catenary curve.[76] Robert Hooke, who first articulated that a catenary arch was comparable to an inverted hanging chain, may have advised Wren on how to achieve the crossing dome of St. Paul's Cathedral. Wren's structural system became the standard for large domes well into the 19th century.[198] The ribs in Guarino Guarini's San Lorenzo and Il Sidone were shaped as catenary arches.[199] The idea of a large oculus in a solid dome revealing a second dome originated with him.[200] He also established the oval dome as a reconciliation of the longitudinal plan church favored by the liturgy of the Counter-Reformation and the centralized plan favored by idealists.[201] Because of the imprecision of oval domes in the Rococo period, drums were problematic and the domes instead often rested directly on arches or pendentives.[202] In the eighteenth century, the study of dome structures changed radically, with domes being considered as a composition of smaller elements, each subject to mathematical and mechanical laws and easier to analyse individually, rather than being considered as whole units unto themselves.[76] Although never very popular in domestic settings, domes were used in a number of 18th century homes built in the Neo-Classical style.[203] In the United States, most public buildings in the late 18th century were only distinguishable from private residences because they featured cupolas.[204]

Modern period domes edit

 
Geodesic domes of the Eden Project in United Kingdom
 
The concrete dome of Saint Sava was entirely built from prefabricated slabs. It was hydraulically lifted from the ground to 40 m height by lift-slab method. 1935–2004

The historicism of the 19th century led to many domes being re-translations of the great domes of the past, rather than further stylistic developments, especially in sacred architecture.[205] New production techniques allowed for cast iron and wrought iron to be produced both in larger quantities and at relatively low prices during the Industrial Revolution. Russia, which had large supplies of iron, has some of the earliest examples of iron's architectural use.[206] Excluding those that simply imitated multi-shell masonry, metal framed domes such as the elliptical dome of Royal Albert Hall in London (57 to 67 meters in diameter) and the circular dome of the Halle au Blé in Paris may represent the century's chief development of the simple domed form.[207] Cast-iron domes were particularly popular in France.[179]

 
The 201 Dome Mosque in Gopalpur, Tangail, Bangladesh.

The practice of building rotating domes for housing large telescopes was begun in the 19th century, with early examples using papier-mâché to minimize weight.[208] Unique glass domes springing straight from ground level were used for hothouses and winter gardens.[209] Elaborate covered shopping arcades included large glazed domes at their cross intersections.[210] The large domes of the 19th century included exhibition buildings and functional structures such as gasometers and locomotive sheds.[211] The "first fully triangulated framed dome" was built in Berlin in 1863 by Johann Wilhelm Schwedler and, by the start of the 20th century, similarly triangulated frame domes had become fairly common.[212][213] Vladimir Shukhov was also an early pioneer of what would later be called gridshell structures and in 1897 he employed them in domed exhibit pavilions at the All-Russia Industrial and Art Exhibition.[213]

Domes built with steel and concrete were able to achieve very large spans.[179] In the late 19th and early 20th centuries, the Guastavino family, a father and son team who worked on the eastern seaboard of the United States, further developed the masonry dome, using tiles set flat against the surface of the curve and fast-setting Portland cement, which allowed mild steel bar to be used to counteract tension forces.[214] The thin domical shell was further developed with the construction by Walther Bauersfeld of two planetarium domes in Jena, Germany in the early 1920s. They consisting of a triangulated frame of light steel bars and mesh covered by a thin layer of concrete.[215] These are generally taken to be the first modern architectural thin shells.[216] These are also considered the first geodesic domes.[69] Geodesic domes have been used for radar enclosures, greenhouses, housing, and weather stations.[217] Architectural shells had their heyday in the 1950s and 1960s, peaking in popularity shortly before the widespread adoption of computers and the finite element method of structural analysis.[218]

The first permanent air supported membrane domes were the radar domes designed and built by Walter Bird after World War II. Their low cost eventually led to the development of permanent versions using teflon-coated fiberglass and by 1985 the majority of the domed stadiums around the world used this system.[219] Tensegrity domes, patented by Buckminster Fuller in 1962, are membrane structures consisting of radial trusses made from steel cables under tension with vertical steel pipes spreading the cables into the truss form. They have been made circular, elliptical, and other shapes to cover stadiums from Korea to Florida.[220] Tension membrane design has depended upon computers, and the increasing availability of powerful computers resulted in many developments being made in the last three decades of the 20th century.[221] The higher expense of rigid large span domes made them relatively rare, although rigidly moving panels is the most popular system for sports stadiums with retractable roofing.[222][223]

See also edit

Excerpts edit

  1. ^ Parker 2012, p. 97: "Dome, a cupola; the term is derived from the Italian duomo, a cathedral, the custom of erecting cupolas on those buildings having been so prevalent that the name dome has, in the French and English languages, been transferred from the church to this kind of roof [See Cupola.]"
  2. ^ a b Smith 1950, p. 6: "The domical shape must be distinguished from domical vaulting because the dome, both as idea and as method of roofing, originated in pliable materials upon a primitive shelter and was later preserved, venerated, and translated into more permanent materials, largely for symbolic and traditional reasons. 1. At the primitive level the most prevalent and usually the earliest type of constructed shelter, whether a tent, pit house, earth lodge, or thatched cabin, was more or less circular in plan and covered by necessity with a curved roof. Therefore, in many parts of the ancient world the domical shape became habitually associated in men's memories with a central type of structure which was venerated as a tribal and ancestral shelter, a cosmic symbol, a house of appearances and a ritualistic abode. 2. Hence many widely separate cultures, whose architecture evolved from primitive methods of construction, had some tradition of an ancient and revered shelter which was distinguished by a curved roof, usually more or less domical in appearance, but sometimes hoop-shaped or conical."
  3. ^ Smith 1950, p. 5: "To the naive eye of men uninterested in construction, the dome, it must be realized, was first of all a shape and then an idea. As a shape (which antedated the beginnings of masonry construction), It was the memorable feature of an ancient, ancestral house. It is still a shape visualized and described by such terms as hemisphere, beehive, onion, melon, and bulbous. In ancient times it was thought of as a tholos, pine cone, omphalos, helmet, tegurium, kubba, kalube, maphalia, vihdra, parasol, amalaka tree, cosmic egg, and heavenly bowl. While the modern terms are purely descriptive, the ancient imagery both preserved some memory of the origin of the domical shape and conveyed something of the ancestral beliefs and supernatural meanings associated with its form."
  4. ^ Downey 1946, pp. 23, 25, 26: "Architectural historians who deal with the history of the dome have been baffled and sometimes led astray by the peculiar vague-ness of some of the literary passages which in some cases form the only evidence for the existence of certain domes or of certain types of domes. When the ancient authors mention a dome, they often call it a sphaira or a sphairion. While inexact, in the geometrical sense, this is a perfectly comprehensible and justifiable method of describing an architectural element whose most prominent characteristic is its sphericity; and that the ancient writers were aware of the inexactitude, but also aware of the usefulness of the graphic image, is suggested by Procopius' reference to the main dome of the Church of the Apostles at Constantinople as τὸ σφαιροειδές, which might be translated "the sphere-like structure."" [...] "Choricius, to the writer's present knowledge, is the only writer of this period who is careful enough to note that a dome or a semi-dome is a hollow spherical form." [...] "Naturally, if one wished to describe a dome vividly, the most arresting feature of its appearance was its sphericity, and everybody knew that if you called a dome a sphaira, you called it this because it resembled a sphaira; and it was understood that a dome was not a sphaira in the geometrical sense. This is of course what one would expect, and the phenomenon is by no means confined to post-classical Greek literature."
  5. ^ a b Mainstone 2000, p. 1: "Architecturally, the dome may be seen not only as a structure but also as shelter, spatial enclosure, silhouette, or symbolic form with divers connotations stemming from past uses. To review all these aspects of its history would be impossible in a brief survey."
  6. ^ Smith 1950, pp. 8–9: "The most primitive and natural shape, derived directly from a round hut made of pliable materials tied together at the top and covered with leaves, skins or thatch, was the pointed and slightly bulbous dome which is so common today among the backward tribes of Nubia and Africa (Fig. 93). This type of dome, resembling a truncated pine cone or beehive, is preserved in the tholos tombs of the Mediterranean (Fig. 63), the rock-cut tombs of Etruria and Sicily (Figs. 64, 65), in the Syrian qubab huts (Fig. 88), on the tomb of Bizzos (Fig. 61) and on many of the early Islamic mosques (Figs. 38-43). To distinguish this shape of dome from the geometric cone we will call it conoid, because of its recognized likeness to the actual pine cone. Other types of domical shapes, flatter and unpointed, were derived from the tent and preserved as tabernacles, ciboria and baldachins (Figs. 144-151). These tent forms, however, could be puffed-up and bulbous owing to the light framework of the roof, as is shown by the celestial baldachin above the great altar of Zeus at Pergamum (Fig. 106) and the Parthian dome among the reliefs of the arch of Septimius Severus at Rome (Fig. 228). There were also in Syria and other parts of the Roman Empire sacred rustic shelters whose ritualistic and domical coverings sometimes had an outward curving flange at the bottom of the dome as the thatch was bent out to form an overhang (Figs. 111-117). In other examples the curve of their light domical roof was broken by the horizontal bindings which held the thatch in place (Fig. 10). The hemispherical shape, which is today so commonly associated with the dome, undoubtedly acquired its geometric curve largely from the theoretical interests of the Greek mathematicians and the practical considerations of Roman mechanics. This Roman standardization of the domical shape, which made it easier to construct accurately in brick, stone and concrete, became the customary form of the antique domical vault."
  7. ^ a b Dodge 1984, pp. 265–267: "Domes have been the subject of controversy for more than a century. The origins of dome construction and the ways in which it was applied have both been heatedly debated In the light of this, two questions arise. Have some scholars made too much of these matters, thereby creating unnecessary problems and a false controversy? And was there really any 'problem' as regards the dome and the square bay? The underlying issue, however, is that of terminology. Respected scholars have plunged into the debate, only to confuse the situation further by the omission of an adequate definition of terms. Where definitions are given, they are either inconsistent through the text, or do not correspond to those in general use. This leads to confusion, misunderstanding and 'problems with domes'. One thing that most scholars agree upon is that the dome is a kind of vault. R. J. Mainstone defines a dome as
    "A spanning space-enclosing structural element circular in plan and commonly hemispherical or nearly so in total form".
    R. Krautheimer defines it as "a hemispherical vault" and the Penguin Dictionary of Architecture gives the following definition
    "A vault of even curvature erected on a circular base. The section can be segmental, semicircular, pointed or bulbous".
    Thus it emerges that the term 'dome' is non-specific, a blanket-word to describe an hemispherical or similar spanning element. When such a vault is placed on a circular wall, as in the Pantheon in Rome, the 'Temple of Mercury' at Bala or the Tor de'Schiavi on the Via Praenestina, there is little disagreement or variation in the term applied to the roofing element; it is a dome. Problems start to occur in recent critical literature when such an element is placed over an octagonal, polygonal or square bay."
  8. ^ Dodge 1984, pp. 268–270: "The Penguin Dictionary of Architecture gives the following definition of a 'domical vault':
    "A vault rising direct on a square or polygonal base, the curved surfaces separated by groins".
    In American and some British publications this feature is called a 'cloister vault' and this has given rise to some of the terminological confusion. However, both Mainstone and Krautheimer, who both use the term 'cloister vault', do point out that it is also called a domical vault. Mainstone's definition is:
    "A vault approximating to the dome but polygonal rather than circular in plan";
    and Krautheimer's definition is:
    "A vault composed of four, eight or twelve curved surfaces, as would result from the interpenetration of two, four or six barrel-vaults of equal height and diameter; also four-sided, eight-sided, etc, dome".
    These two definitions exactly describe the Domus Augstana [sic] and Bostra examples. Rivoira'a [sic] definition of the Domus Aurea dome demonstrates how unnecessarily convoluted some terms get. He refers to it as a 'cloister vault dome'. He also calls the domical vault 'the ungroined cloister dome'. The term domical vault can be applied to such a vault on a square base, that is, made up of four panels, as Krautheimer points out. It is with this particular kind of domical vault that even more acute problems of definition have arisen in the past. Butler, in his description of the South Baths at Bostra, calls the octagonal dome, referred to above, an 'eight-sided dome'. The two square rooms of the complex (R and T on Butler's plan) were also vaulted. That over room R is still intact and Butler refers to it as a 'cloistered vault' or a 'square dome'. The first term, as already demonstrated, is the American term for the domical vault, but by its qualification as a square dome has caused some scholars to make some rather misguided statements. Ward-Perkins refers to the structure as a domical vault. Creswell refers to the 'square dome of the Praetorium at Musmiye (ancient Phaena), at the same time giving the French and German terms, voute en arc de cloître and klosterküppel. It is obvious from these that he means the domical or cloister vault. However, Swift calls this kind of vault "the so-called cloister dome on a square plan". By this definition it becomes obvious what kind of structure he is referring to, and he also gives Musmiye as an example."
  9. ^ a b Chilton 2000, p. 131: "In the mind of an engineer a dome is structure with a very distinct behavior. It is a synclastically-curved, three dimensional surface, primarily stressed in compression under its own weight and applied loading, and made of a material resistant to such forces (usually masonry or some form of concrete). Circumferential tension forces that may occur at the base of a dome are usually resisted by a tension ring. However, a dictionary definition of the word dome may be less precise. For instance, in a typical concise dictionary a dome is defined as: -
    'dome, n., & v.t.l. Stately building, mansion, (poet.); rounded vault as roof, with circular, elliptical or polygonal base, large cupola; natural vault, canopy, (of sky, trees, etc.); rounded summit of hill etc,; hence domed, domic(al), dome-like, domy. 2. v.t. Cover with, shape as, dome. [F. f. It. duomo cathedral, dome, (& direct) f. L domus house]'
    In the past the stately building often had a masonry dome whereas, due to the rapid expansion in structural systems that have become available in the 20th century, this is now less likely to be the case. This has led to many modern large-span structures being described as domes when their primary load-bearing system does not exactly accord with the engineering definition. Some actually work almost entirely in tension, although they still may be more or less dome-shaped (for example the Millennium Dome in Greenwich). This paper, therefore, addresses the conflict that now exists between the precise engineering and more general dictionary definitions of the term dome by reviewing the development of various types of lightweight and tensile domes during the 20th century."
  10. ^ Osborne 2004, p. 11: "While dome has become the most used English geometric and architectural term for "a large hemispherical, approximately hemispherical or spheroidal vault" (Delbridge, 1981), cupola is the older term."
  11. ^ Saylor 1994, p. 56: "dome, a hemispherical roof form."
  12. ^ Parker 2003: "Definition dome [ARCHITECTURE] A hemispherical roof."
  13. ^ Gorse, Johnston & Pritchard 2012, p. 115: "dome 1. A structure that has a hemispherical roof. 2. A curved layer of rock strata, formed by an upward fold."
  14. ^ Coates, Brooker & Stone 2009, p. 76: "A dome is a structural element conventionally used to cover large spaces. It is defined as an arch that has been rotated around its vertical axis."
  15. ^ Guedes 2016, p. 174: "The dome may be regarded as the three-dimensional counterpart of the arch. In its true circular form, a vertical arch is rotated around a vertical axis and sweeps out, at every level, a continuous circular horizontal ring. Loads can be transmitted both along the meridian lines of the vertical arches and around the horizontal rings."
  16. ^ Palmer 2016, p. 123: "The dome, which is created from an arch turned on its axis 360 degrees, is traditionally considered one of the most important Ancient Roman architectural inventions."
  17. ^ Dodge 1984, p. 277: "Dome A vault of usually even curvature erected on a circular base whose elements are set radially rather than corbelled. The profile can vary. The term can be applied in a general way to other domical forms (Such as the domical and sail vault)"
  18. ^ a b Trachtenberg & Hyman 1986, p. 583: "Dome A curved vault that is erected on a circular base and that is semicircular, pointed, or bulbous in section. If raised over a square or polygonal base transitional squinches or pendentives must be inserted at the corners of the base to transform it into a near circle."
  19. ^ a b Fleming, Honour & Pevsner 1991, pp. 126–127: "Dome. Vault of even curvature on a circular base. The section can be segmental, semicircular, pointed, or bulbous. If a dome is to be erected on a square base, members must be interpolated at the corners to mediate between the square and the circle. They can be pendentives of squinches. A pendentive is a spherical triangle; its curvature is that of a dome whose diameter is the diagonal is the diagonal of the initial square. The triangle is carried to the height which allows the erection on its top horizontal of the dome proper. A squinch is either an arch or arches of increasing radius projecting one in front of the other, or horizontal arches projecting in the same manner. If squinches are placed in the corners of the square and enough arches are erected on them they will result in a suitable base-line for the dome. In all these cases the dome will have the diameter of the length of one side of the square. It can be placed direct on the circular base-line, when this is achieved, or a drum, usually with windows, can be interpolated. If the dome has no drum and is segmental, it is called a saucer dome. If it has no drum and is semicircular, it is called a calotte. Another method of developing a dome out of a square is to take the diagonal of the square as the diameter of the dome. In this case the dome starts as if by pendentives, but their curvature is then continued without any break. Such domes are called sail vaults, because they resemble a sail with the four corners fixed and the wind blowing into it. A domical vault is not a dome proper. If on a square base, four webs (cells) rise to a point separated by groins (see vault). The same can be done on a polygonal base. An umbrella, parachute, pumpkin or melon dome is a dome on a circular base, but also divided into individual webs, each of which, however, has a base-line curved segmentally in plan and curved in elevation."
  20. ^ a b Curl 2003, p. 220: "A domical vault is not a true dome. A dome is a vault with a segmental, semicircular, bulbous, or pointed section rising from a circular base."
  21. ^ a b Ambrose, Harris & Stone 2008, p. 41: "A concave structural element, erected on a circular base, and usually the shape of a semi-sphere. A dome has a curved surface and functions much like an arch, but provides support in all directions. Larger domes often have two or even three layers: the top and bottom are decorative, while the centre layer is structural and supports the other two. Domes can be segmental, semicircular, pointed or bulbous."
  22. ^ a b Clarke 2010, p. 79: "dome A vault of even curvature over a circular base; the section can be segmental, semicircular, pointed, or bulbous. If a vault is erected over a square base, squinches or pendentives must be inserted at the corners to connect the dome to the base."
  23. ^ Ching 2011, p. 62: "A vaulted structure having a circular plan and usually the form of a portion of a sphere, so constructed as to exert an equal thrust in all directions."
  24. ^ a b Burden 2012, p. 155: "Dome: a curved roof structure that spans an area on a circular base, producing an equal thrust in all directions. A cross section of the dome can be semicircular, pointed, or segmented."
  25. ^ Kurtz 2004, p. 378: "Dome" [...] "1. A construction in the form of a spherical cap realized on a circular or polygonal plan. 2. The internal surface of a dome. Syn. with CUPOLA. 3. A surface of revolution generated by any meridian curve turning around a vertical axis. Horizontal sections are circular rings and the dome picks up on its bearings by a circular belt. 4. Syn, with CAVITY; OPEN; POT-HOLE"
  26. ^ Ching, Jarzombek & Prakash 2007, p. 761: "A vaulted structure having a circular or polygonal plan and usually the form of a portion of a sphere, so constructed so as to exert an equal thrust in all directions."
  27. ^ Davies & Jokiniemi 2008, p. 118: "Dome 1 a hollow, flattened or raised hemispherical roof structure, often of masonry, which rests on a circular, square, or polygonal base. See below. See types of dome illustration. See classical temple illustration. bulbous dome, see onion dome. drum dome. glass dome. half dome. melon dome, see umbrella dome. onion dome. parachute dome, see umbrella dome. pendentive dome. pumpkin dome, see umbrella dome. sail dome, sail vault. saucer dome. semi dome, see half dome. umbrella dome. 2 see domelight."
  28. ^ a b Parker 2012, p. 90: "Cupola (Ital.), a concave ceiling, either hemispherical or of any other curve, covering a circular or polygonal area; also a roof, the exterior of which is either one of these forms, usually called a dome, and in Latin tholus."
  29. ^ Davies & Jokiniemi 2012, p. 143: "Dome 1 a hollow, flattened or raised hemispherical roof structure, often of masonry, which rests on a circular, square, or polygonal base. See Types included as separate entries are listed below: bulbous dome, see onion dome; drum dome; half dome; melon dome, see umbrella dome; onion dome; parachute dome, see umbrella dome; pendentive dome; pumpkin dome, see umbrella dome; sail dome, sail vault; saucer dome; semi dome, see half dome; umbrella dome. 2 see domelight."
  30. ^ Cowan & Smith 1998, p. 73: "A vault of double curvature, both curves being convex upwards. Most domes are portions of a sphere; however, it is possible to have a dome of non-spherical curvature on a circular plan, or to have a dome on a non-circular plan, such as an ellipse, an oval or a rectangle."
  31. ^ a b McNeil 2002, p. 879: "A dome is a convex rounded roof covering the whole or a part of a building with a base on the horizontal plane which is circular, elliptical or polygonal. In vertical section the dome may be hemispherical, partly elliptical, saucer-shaped, or formed like a bulb (the so-called onion domes to be seen in eastern Europe)."
  32. ^ a b Curl & Wilson 2015, pp. 236–237: "Cupola, essentially a species of vault, constructed on a circular, elliptical, or polygonal plan, bulbous, segmental, semicircular, or pointed in vertical section. It can be built on top of a structure the plan of which is identical to that of the dome: if that structure's wall is circular or elliptical it is a drum (often pierced with windows) as in a rotunda. However, domes usually provide cover for a square- or rectangular-planned building or compartment, so adjustments are made to facilitate the transition from the square to the circular, elliptical, or polygonal base of the cupola or dome. This is achieved by means of pendentives (fragments of a sail-vault, resembling a species of concave, distorted, almost triangular spandrels, rising up from the corner at the top of the right-angled compartment to the circular or elliptical base of the drum or cupola) or squinches (small arch or series of parallel arches of increasing radius spanning the angle of the square compartment). Both the drum and cupola will have a diameter the same dimension as the side of the square on which the whole structure stands. Types of dome include: calotte: low cupola or saucer dome of segmental vertical section, like a skull-cap; cloister-vault: as domical vault; domical vault: cloister-vault, not a true dome, but formed of four or more (depending on the shape of the base) cells or webs forming groins where they touch vertically and rising to a point; melon: as parachute; Pantheon: low dome on the exterior, often stepped, resembling that of the Pantheon in Rome, and coffered on the interior, widely copied by Neo-Classical architects; parachute: melon, pumpkin, or umbrella dome standing on a scalloped circular base and formed of individual webs, segmental on plan, joined on groins or ribs. Each web has a concave interior and convex exterior so it resembles a parachute, rather than an umbrella; pumpkin: as parachute; sail dome: dome resembling a billowing sail over a square compartment with its diameter the same dimension as the diagonal instead of the side of the square below, enabling the structure to rise as though on pendentives but continuing without interruption. Pendentives are really part of a sail-dome and themselves are a species of sail-vault; umbrella: as parachute."
  33. ^ Heyman 1997, p. 27: "A dome is a rounded vault forming a roof over a large interior space." [...] "The rounded vault of the dome can take many forms. Perhaps the simplest of these is a shell of revolution, in which every horizontal section is circular; an egg in an egg-cup is a shell of this kind."
  34. ^ Mainstone 2000, p. 1: "Structurally, I take the term dome to denote, as it normally does, a doubly curved form supported from below and acting primarily in arching compression as it spans the space it encloses."
  35. ^ a b Harris 2005, p. 319: "Dome 1. A curved roof structure spanning an area; often hemispherical in shape. 2. A square prefabricated pan form; used in two-way joist (waffle) concrete floor construction. 3. A vault substantially hemispherical in shape, but sometimes slightly pointed or bulbous; a ceiling of similar form. Also see geodesic dome and saucer dome."
  36. ^ a b Brett 2012, p. 20: "Dome a vaulted roof; normally circular or polygonal in plan and semicircular, segmental or pointed in section. See also Cupola and Squinch."
  37. ^ Hourihane 2012, p. 301: "Rounded vault covering an interior space. A very small dome roof, for example a lantern mounted on the eye of a dome proper (e.g. St Paul's Cathedral, London), is known as a cupola. In Italian cupola is used for a monumental dome." [...] "A dome can either be composed of curved segments or be a shell of revolution. The dome at Florence Cathedral by Filippo Brunelleschi (1377-1446) is segmental, octangular at every section. A shell of revolution is generated by rotating an arch about a vertical central axis. To produce a hemispherical surface the arch will be semicircular, but and shape of arch, similarly rotated, will give rise to a shell of revolution; and every horizontal cross-section is still circular. The simplest form of dome is that of such a shell of revolution: for example, the inner masonry dome of St Paul's Cathedral is roughly hemispherical, and has an open eye, while the main dome is conical; but both are shells of revolution, as is the surface of the timber outer dome. A dome can have either a single or a double shell."
  38. ^ a b Harris 2013: "Dome 1. A curved roof structure spanning an area; often hemispherical in shape. 2. A vault substantially hemispherical in shape, but sometimes slightly pointed or bulbous; a ceiling of similar form."
  39. ^ a b Murray, Murray & Jones 2013, p. 151: "dome A structure that can be either circular in plan, or oval, hexagonal, octagonal, or a combination of these forms. It may have a high profile, or hemispherical, or flattened."
  40. ^ Palmisano & Totaro 2010, p. 519: "The absence of a common language is one of the reasons why nowadays there is a very big gap between the Architect and the Engineer. The introduction of new materials and techniques during the Industrial Revolution and the born of the first polytechnics in the 18th century, led to a different cultural approach to the design causing the born of different languages between Architects and Engineers. Nowadays, with the widespread of very complicated works of the architecture there is a huge need to bridge the gap between Architects and Engineers. In this context, focusing the attention on masonry domes, this paper aims at highlighting that Load Path Method seems to open new prospects in the search for a common language between engineers and architects to give voice, in harmony and in a single design, to formal, aesthetical, functional and structural aspects. According to LPM, a dome can be seen as a system of meridian arches joined by the parallel circles. The arches draw the paths of the vertical loads while the parallel circles draw the paths of the unbalanced thrusts. In fact, differently from the arches, in dome the equilibrium of the thrusts in every node is always possible because of the presence of the parallels."
  41. ^ a b Chilton 2000, p. 143: "Although the name 'dome' was appropriately applied (in the strict engineering sense) to historical long-span structures of synclastic form, working in compression and using heavy materials with little tensile strength, this is not correct for many of the new lightweight structural systems. However, the name 'dome' in common usage has come to refer to almost any long-span roofing system. The answer, therefore, to the question posed in the title of this paper is "It depends!". A synclastic surface acting predominantly in compression is clearly a dome by name, by form and by engineering definition, whilst a structure acting mainly in tension (such as the Georgia Dome) is a dome in name alone. Between these extremes there are many shades of distinction."
  42. ^ Jannasch 2016, pp. 745–746: "A funicular masonry dome experiences no hoop stresses, whether tensile or compressive, so it is always on the verge of bursting. Shallow spheric domes maintain compressive stresses in each course and are therefore more stable than the "ideal" funicular form. Viable non-funicular domes also include Herrero's flat vault at the Escorial, and Mackenzie's 1840 concept of an inverted fan vault." [...] "Masonry domes are often explained as free-standing arches rotated around a central axis, or as half-arches swept between a tension ring at the base and an ocular compression ring at the top. Such concepts aren't entirely inaccurate, but they are far from complete. They undervalue or ignore the circumferential compression in each course upon which the rising dome depends and which remains active in many completed structures. They also tend to ignore the vertical shear resistance that prevents inner and upper portions of the dome from crashing vertically down through outer and lower portions, and the horizontal shear resistance that allows lower parts of the dome to contain the thrust of upper parts. Visualizing the dome as a rotated arch implies that the bedding faces between subsequent courses of masonry need to be more or less normal to the section, which is the case in an arch, but not the case in a dome. Lastly, free-standing arches must be thick enough to contain their funicular. This is not true of domes. That the arch and funicular don't really explain of the structural behavior of domes should be clear from real world examples. The conical domes at Pisa and elsewhere, for example, the shallow domes of Byzantium, and the circular vaults at the Escorial are far from funicular. None of them would succeed if "un-rotated" into arches."

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dome, other, uses, disambiguation, dome, from, latin, domus, architectural, element, similar, hollow, upper, half, sphere, there, significant, overlap, with, term, cupola, which, also, refer, dome, structure, dome, precise, definition, dome, been, matter, cont. For other uses see Dome disambiguation A dome from Latin domus is an architectural element similar to the hollow upper half of a sphere There is significant overlap with the term cupola which may also refer to a dome or a structure on top of a dome The precise definition of a dome has been a matter of controversy and there are a wide variety of forms and specialized terms to describe them A dome can rest directly upon a rotunda wall a drum or a system of squinches or pendentives used to accommodate the transition in shape from a rectangular or square space to the round or polygonal base of the dome The dome s apex may be closed or may be open in the form of an oculus which may itself be covered with a roof lantern and cupola Domes have a long architectural lineage that extends back into prehistory Domes were built in ancient Mesopotamia and they have been found in Persian Hellenistic Roman and Chinese architecture in the ancient world as well as among a number of indigenous building traditions throughout the world Dome structures were common in both Byzantine architecture and Sasanian architecture which influenced that of the rest of Europe and Islam respectively in the Middle Ages The domes of European Renaissance architecture spread from Italy in the early modern period while domes were frequently employed in Ottoman architecture at the same time Baroque and Neoclassical architecture took inspiration from Roman domes Advancements in mathematics materials and production techniques resulted in new dome types Domes have been constructed over the centuries from mud snow stone wood brick concrete metal glass and plastic The symbolism associated with domes includes mortuary celestial and governmental traditions that have likewise altered over time The domes of the modern world can be found over religious buildings legislative chambers sports stadiums and a variety of functional structures Contents 1 Etymology 2 Definitions 3 Elements 4 Materials 5 Shapes and internal forces 6 Symbolism 7 Acoustics 8 Types 8 1 Beehive dome 8 2 Braced dome 8 3 Cloister vault 8 4 Compound dome 8 5 Crossed arch dome 8 6 Ellipsoidal dome 8 7 Geodesic dome 8 8 Hemispherical dome 8 9 Onion dome 8 10 Oval dome 8 11 Paraboloid dome 8 12 Sail dome 8 13 Saucer dome 8 14 Umbrella dome 9 History 9 1 Early history and simple domes 9 2 Persian domes 9 3 Chinese domes 9 4 Roman and Byzantine domes 9 5 Arabic and Western European domes 9 6 Russian domes 9 7 Ottoman domes 9 8 Italian Renaissance domes 9 9 South Asian domes 9 10 Early modern period domes 9 11 Modern period domes 10 See also 11 Excerpts 12 References 13 BibliographyEtymology editThe English word dome ultimately derives from the ancient Greek and Latin domus house which up through the Renaissance labeled a revered house such as a Domus Dei or House of God regardless of the shape of its roof This is reflected in the uses of the Italian word duomo the German Icelandic Danish word dom cathedral and the English word dome as late as 1656 when it meant a Town House Guild Hall State House and Meeting House in a city The French word dosme came to acquire the meaning of a cupola vault specifically by 1660 This French definition gradually became the standard usage of the English dome in the eighteenth century as many of the most impressive Houses of God were built with monumental domes and in response to the scientific need for more technical terms 1 a Definitions editAcross the ancient world curved roof structures that would today be called domes had a number of different names reflecting a variety of shapes traditions and symbolic associations b c d e The shapes were derived from traditions of pre historic shelters made from various impermanent pliable materials and were only later reproduced as vaulting in more durable materials b The hemispherical shape often associated with domes today derives from Greek geometry and Roman standardization but other shapes persisted including a pointed and bulbous tradition inherited by some early Islamic mosques f Modern academic study of the topic has been controversial and confused by inconsistent definitions such as those for cloister vaults and domical vaults g h Dictionary definitions of the term dome are often general and imprecise i Generally speaking it is non specific a blanket word to describe an hemispherical or similar spanning element g j Published definitions include hemispherical roofs alone k l m revolved arches n o p and vaults on a circular base alone q r s t u v w x circular or polygonal base y z aa ab ac circular elliptical or polygonal base ad ae af or an undefined area ag ah ai aj ak al am Definitions specifying vertical sections include semicircular pointed or bulbous r ai al semicircular segmental or pointed x aj semicircular segmental pointed or bulbous s t u v af semicircular segmental elliptical or bulbous ae and high profile hemispherical or flattened am nbsp Comparison of a generic true arch left and a corbel arch right Sometimes called false domes corbel domes achieve their shape by extending each horizontal layer of stones inward slightly farther than the lower one until they meet at the top 2 A false dome may also refer to a wooden dome 3 The Italian use of the term finto meaning false can be traced back to the 17th century in the use of vaulting made of reed mats and gypsum mortar 4 True domes are said to be those whose structure is in a state of compression with constituent elements of wedge shaped voussoirs the joints of which align with a central point The validity of this is unclear as domes built underground with corbelled stone layers are in compression from the surrounding earth 5 The precise definition of pendentive has also been a source of academic contention such as whether or not corbelling is permitted under the definition and whether or not the lower portions of a sail vault should be considered pendentives 6 Domes with pendentives can be divided into two kinds simple and compound 7 In the case of the simple dome the pendentives are part of the same sphere as the dome itself however such domes are rare 8 In the case of the more common compound dome the pendentives are part of the surface of a larger sphere below that of the dome itself and form a circular base for either the dome or a drum section 7 The fields of engineering and architecture have lacked common language for domes with engineering focused on structural behavior and architecture focused on form and symbolism an i e ao ap Additionally new materials and structural systems in the 20th century have allowed for large dome shaped structures that deviate from the traditional compressive structural behavior of masonry domes Popular usage of the term has expanded to mean almost any long span roofing system ao Elements edit nbsp Dome of the Church of the Assumption in CarcaixentThe word cupola is another word for dome and is usually used for a small dome upon a roof or turret 9 Cupola has also been used to describe the inner side of a dome 10 ab The top of a dome is the crown The inner side of a dome is called the intrados and the outer side is called the extrados 11 As with arches the springing of a dome is the base level from which the dome rises and the haunch is the part that lies roughly halfway between the base and the top 11 12 Domes can be supported by an elliptical or circular wall called a drum If this structure extends to ground level the round building may be called a rotunda 13 Drums are also called tholobates and may or may not contain windows A tambour or lantern is the equivalent structure over a dome s oculus supporting a cupola 14 When the base of the dome does not match the plan of the supporting walls beneath it for example a dome s circular base over a square bay techniques are employed to bridge the two 15 One technique is to use corbelling progressively projecting horizontal layers from the top of the supporting wall to the base of the dome such as the corbelled triangles often used in Seljuk and Ottoman architecture 16 The simplest technique is to use diagonal lintels across the corners of the walls to create an octagonal base Another is to use arches to span the corners which can support more weight 17 A variety of these techniques use what are called squinches 18 A squinch can be a single arch or a set of multiple projecting nested arches placed diagonally over an internal corner 19 Squinches can take a variety of other forms as well including trumpet arches and niche heads or half domes 18 The invention of pendentives superseded the squinch technique 17 Pendentives are triangular sections of a sphere like concave spandrels between arches and transition from the corners of a square bay to the circular base of a dome The curvature of the pendentives is that of a sphere with a diameter equal to the diagonal of the square bay 20 Materials editThe earliest domes in the Middle East were built with mud brick and eventually with baked brick and stone Domes of wood allowed for wide spans due to the relatively light and flexible nature of the material and were the normal method for domed churches by the 7th century although most domes were built with the other less flexible materials Wooden domes were protected from the weather by roofing such as copper or lead sheeting 21 Domes of cut stone were more expensive and never as large and timber was used for large spans where brick was unavailable 22 Roman concrete used an aggregate of stone with a powerful mortar The aggregate transitioned over the centuries to pieces of fired clay then to Roman bricks By the sixth century bricks with large amounts of mortar were the principle vaulting materials Pozzolana appears to have only been used in central Italy 23 Brick domes were the favored choice for large space monumental coverings until the Industrial Age due to their convenience and dependability 24 Ties and chains of iron or wood could be used to resist stresses 25 The new building materials of the 19th century and a better understanding of the forces within structures from the 20th century opened up new possibilities Iron and steel beams steel cables and pre stressed concrete eliminated the need for external buttressing and enabled much thinner domes Whereas earlier masonry domes may have had a radius to thickness ratio of 50 the ratio for modern domes can be in excess of 800 The lighter weight of these domes not only permitted far greater spans but also allowed for the creation of large movable domes over modern sports stadiums 26 Experimental rammed earth domes were made as part of work on sustainable architecture at the University of Kassel in 1983 27 Shapes and internal forces editA masonry dome produces thrusts downward and outward They are thought of in terms of two kinds of forces at right angles from one another meridional forces like the meridians or lines of longitude on a globe are compressive only and increase towards the base while hoop forces like the lines of latitude on a globe are in compression at the top and tension at the base with the transition in a hemispherical dome occurring at an angle of 51 8 degrees from the top 28 The thrusts generated by a dome are directly proportional to the weight of its materials 29 Grounded hemispherical domes generate significant horizontal thrusts at their haunches 30 The outward thrusts in the lower portion of a hemispherical masonry dome can be counteracted with the use of chains incorporated around the circumference or with external buttressing although cracking along the meridians is natural 28 For small or tall domes with less horizontal thrust the thickness of the supporting arches or walls can be enough to resist deformation which is why drums tend to be much thicker than the domes they support 31 Unlike voussoir arches which require support for each element until the keystone is in place domes are stable during construction as each level is made a complete and self supporting ring 3 The upper portion of a masonry dome is always in compression and is supported laterally so it does not collapse except as a whole unit and a range of deviations from the ideal in this shallow upper cap are equally stable 32 Because voussoir domes have lateral support they can be made much thinner than corresponding arches of the same span For example a hemispherical dome can be 2 5 times thinner than a semicircular arch and a dome with the profile of an equilateral arch can be thinner still 33 The optimal shape for a masonry dome of equal thickness provides for perfect compression with none of the tension or bending forces against which masonry is weak 30 For a particular material the optimal dome geometry is called the funicular surface the comparable shape in three dimensions to a catenary curve for a two dimensional arch 34 35 Adding a weight to the top of a pointed dome such as the heavy cupola at the top of Florence Cathedral changes the optimal shape to more closely match the actual pointed shape of the dome The pointed profiles of many Gothic domes more closely approximate the optimal dome shape than do hemispheres which were favored by Roman and Byzantine architects due to the circle being considered the most perfect of forms 36 Symbolism editMain article Symbolism of domes According to E Baldwin Smith from the late Stone Age the dome shaped tomb was used as a reproduction of the ancestral god given shelter made permanent as a venerated home of the dead The instinctive desire to do this resulted in widespread domical mortuary traditions across the ancient world from the stupas of India to the tholos tombs of Iberia By Hellenistic and Roman times the domical tholos had become the customary cemetery symbol 37 Domes and tent canopies were also associated with the heavens in Ancient Persia and the Hellenistic Roman world A dome over a square base reflected the geometric symbolism of those shapes The circle represented perfection eternity and the heavens The square represented the earth An octagon was intermediate between the two 38 The distinct symbolism of the heavenly or cosmic tent stemming from the royal audience tents of Achaemenid and Indian rulers was adopted by Roman rulers in imitation of Alexander the Great becoming the imperial baldachin This probably began with Nero whose Golden House also made the dome a feature of palace architecture 39 The dual sepulchral and heavenly symbolism was adopted by early Christians in both the use of domes in architecture and in the ciborium a domical canopy like the baldachin used as a ritual covering for relics or the church altar The celestial symbolism of the dome however was the preeminent one by the Christian era 40 In the early centuries of Islam domes were closely associated with royalty A dome built in front of the mihrab of a mosque for example was at least initially meant to emphasize the place of a prince during royal ceremonies Over time such domes became primarily focal points for decoration or the direction of prayer The use of domes in mausoleums can likewise reflect royal patronage or be seen as representing the honor and prestige that domes symbolized rather than having any specific funerary meaning 41 The wide variety of dome forms in medieval Islam reflected dynastic religious and social differences as much as practical building considerations 21 Acoustics editBecause domes are concave from below they can reflect sound and create echoes 42 A dome may have a whispering gallery at its base that at certain places transmits distinct sound to other distant places in the gallery 14 The half domes over the apses of Byzantine churches helped to project the chants of the clergy 43 Although this can complement music it may make speech less intelligible leading Francesco Giorgi in 1535 to recommend vaulted ceilings for the choir areas of a church but a flat ceiling filled with as many coffers as possible for where preaching would occur 44 Cavities in the form of jars built into the inner surface of a dome may serve to compensate for this interference by diffusing sound in all directions eliminating echoes while creating a divine effect in the atmosphere of worship This technique was written about by Vitruvius in his Ten Books on Architecture which describes bronze and earthenware resonators 42 The material shape contents and placement of these cavity resonators determine the effect they have reinforcing certain frequencies or absorbing them 45 Types editBeehive dome edit See also Beehive tomb Also called a corbelled dome 46 or false dome 47 these are different from a true dome in that they consist of purely horizontal layers As the layers get higher each is slightly cantilevered or corbeled toward the center until meeting at the top A monumental example is the Mycenaean Treasury of Atreus from the late Bronze Age 48 Braced dome edit A single or double layer space frame in the form of a dome 49 a braced dome is a generic term that includes ribbed 50 Schwedler 50 three way grid 50 lamella or Kiewitt 51 lattice 52 and geodesic domes 53 The different terms reflect different arrangements in the surface members Braced domes often have a very low weight and are usually used to cover spans of up to 150 meters 54 Often prefabricated their component members can either lie on the dome s surface of revolution or be straight lengths with the connecting points or nodes lying upon the surface of revolution Single layer structures are called frame or skeleton types and double layer structures are truss types which are used for large spans When the covering also forms part of the structural system it is called a stressed skin type The formed surface type consists of sheets joined at bent edges to form the structure 49 Cloister vault edit Main article Cloister vault Also called domical vaults a term sometimes also applied to sail vaults 55 56 polygonal domes 57 coved domes 58 gored domes 59 segmental domes 60 a term sometimes also used for saucer domes paneled vaults 61 or pavilion vaults 62 these are domes that maintain a polygonal shape in their horizontal cross section The earliest known examples date to the first century BC such as the Tabularium of Rome from 78 BC Others include the Baths of Antoninus in Carthage 145 160 and the Palatine Chapel at Aachen 13th 14th century 63 The most famous example is the Renaissance octagonal dome of Filippo Brunelleschi over the Florence Cathedral Thomas Jefferson the third president of the United States installed an octagonal dome above the West front of his plantation house Monticello 64 Compound dome edit Also called domes on pendentives 65 or pendentive domes 66 a term also applied to sail vaults compound domes have pendentives that support a smaller diameter dome immediately above them as in the Hagia Sophia or a drum and dome as in many Renaissance and post Renaissance domes with both forms resulting in greater height 7 Crossed arch dome edit One of the earliest types of ribbed vault the first known examples are found in the Great Mosque of Cordoba in the 10th century Rather than meeting in the center of the dome the ribs characteristically intersect one another off center forming an empty polygonal space in the center Geometry is a key element of the designs with the octagon being perhaps the most popular shape used Whether the arches are structural or purely decorative remains a matter of debate The type may have an eastern origin although the issue is also unsettled Examples are found in Spain North Africa Armenia Iran France and Italy 67 nbsp A corbel dome nbsp A domical vault nbsp A compound dome nbsp A crossed arch dome Ellipsoidal dome edit Main article Ellipsoidal dome The ellipsoidal dome is a surface formed by the rotation around a vertical axis of a semi ellipse Like other rotational domes formed by the rotation of a curve around a vertical axis ellipsoidal domes have circular bases and horizontal sections and are a type of circular dome for that reason 68 Geodesic dome edit Main article Geodesic dome Geodesic domes are the upper portion of geodesic spheres They are composed of a framework of triangles in a polyhedron pattern 69 The structures are named for geodesics and are based upon geometric shapes such as icosahedrons octahedrons or tetrahedrons 69 3 Such domes can be created using a limited number of simple elements and joints and efficiently resolve a dome s internal forces Their efficiency is said to increase with size 70 Although not first invented by Buckminster Fuller they are associated with him because he designed many geodesic domes and patented them in the United States 71 Hemispherical dome edit The hemispherical dome is a surface formed by the rotation around a vertical axis of a semicircle Like other rotational domes formed by the rotation of a curve around a vertical axis hemispherical domes have circular bases and horizontal sections and are a type of circular dome for that reason They experience vertical compression along their meridians but horizontally experience compression only in the portion above 51 8 degrees from the top Below this point hemispherical domes experience tension horizontally and usually require buttressing to counteract it 68 According to E Baldwin Smith it was a shape likely known to the Assyrians defined by Greek theoretical mathematicians and standardized by Roman builders 72 Onion dome edit Main article Onion dome Bulbous domes bulge out beyond their base diameters offering a profile greater than a hemisphere 3 An onion dome is a greater than hemispherical dome with a pointed top in an ogee profile 3 They are found in the Near East Middle East Persia and India and may not have had a single point of origin Their appearance in northern Russian architecture predates the Tatar occupation of Russia and so is not easily explained as the result of that influence 73 They became popular in the second half of the 15th century in the Low Countries of Northern Europe possibly inspired by the finials of minarets in Egypt and Syria and developed in the 16th and 17th centuries in the Netherlands before spreading to Germany becoming a popular element of the baroque architecture of Central Europe German bulbous domes were also influenced by Russian and Eastern European domes 74 The examples found in various European architectural styles are typically wooden 3 Examples include Kazan Church in Kolomenskoye and the Brighton Pavilion by John Nash 3 In Islamic architecture they are typically made of masonry rather than timber with the thick and heavy bulging portion serving to buttress against the tendency of masonry domes to spread at their bases The Taj Mahal is a famous example 3 Oval dome edit See also Elliptical dome An oval dome is a dome of oval shape in plan profile or both The term comes from the Latin ovum meaning egg The earliest oval domes were used by convenience in corbelled stone huts as rounded but geometrically undefined coverings and the first examples in Asia Minor date to around 4000 B C The geometry was eventually defined using combinations of circular arcs transitioning at points of tangency If the Romans created oval domes it was only in exceptional circumstances The Roman foundations of the oval plan Church of St Gereon in Cologne point to a possible example Domes in the Middle Ages also tended to be circular though the church of Santo Tomas de las Ollas in Spain has an oval dome over its oval plan Other examples of medieval oval domes can be found covering rectangular bays in churches Oval plan churches became a type in the Renaissance and popular in the Baroque style 75 The dome built for the basilica of Vicoforte by Francesco Gallo was one of the largest and most complex ever made 76 Although the ellipse was known in practice domes of this shape were created by combining segments of circles Popular in the 16th and 17th centuries oval and elliptical plan domes can vary their dimensions in three axes or two axes citation needed A sub type with the long axis having a semicircular section is called a Murcia dome as in the Chapel of the Junterones at Murcia Cathedral When the short axis has a semicircular section it is called a Melon dome citation needed nbsp A geodesic dome Montreal Canada nbsp A hemispherical dome illustration nbsp An oval dome Rome Italy Paraboloid dome edit A paraboloid dome is a surface formed by the rotation around a vertical axis of a sector of a parabola Like other rotational domes formed by the rotation of a curve around a vertical axis paraboloid domes have circular bases and horizontal sections and are a type of circular dome for that reason Because of their shape paraboloid domes experience only compression both radially and horizontally 68 Sail dome edit Also called sail vaults 77 handkerchief vaults 78 domical vaults a term sometimes also applied to cloister vaults 56 pendentive domes 79 80 a term that has also been applied to compound domes Bohemian vaults 81 or Byzantine domes citation needed this type can be thought of as pendentives that rather than merely touching each other to form a circular base for a drum or compound dome smoothly continue their curvature to form the dome itself The dome gives the impression of a square sail pinned down at each corner and billowing upward 15 These can also be thought of as saucer domes upon pendentives 60 Sail domes are based upon the shape of a hemisphere and are not to be confused with elliptic parabolic vaults which appear similar but have different characteristics 68 In addition to semicircular sail vaults there are variations in geometry such as a low rise to span ratio or covering a rectangular plan Sail vaults of all types have a variety of thrust conditions along their borders which can cause problems but have been widely used from at least the sixteenth century The second floor of the Llotja de la Seda is covered by a series of nine meter wide sail vaults citation needed Saucer dome edit Also called segmental domes 82 a term sometimes also used for cloister vaults or calottes 15 these have profiles of less than half a circle Because they reduce the portion of the dome in tension these domes are strong but have increased radial thrust 82 Many of the largest existing domes are of this shape Masonry saucer domes because they exist entirely in compression can be built much thinner than other dome shapes without becoming unstable The trade off between the proportionately increased horizontal thrust at their abutments and their decreased weight and quantity of materials may make them more economical but they are more vulnerable to damage from movement in their supports 83 Umbrella dome edit Also called gadrooned 84 fluted 84 organ piped 84 pumpkin 15 melon 15 ribbed 84 parachute 15 scalloped 85 or lobed domes 86 these are a type of dome divided at the base into curved segments which follow the curve of the elevation 15 Fluted may refer specifically to this pattern as an external feature such as was common in Mamluk Egypt 3 The ribs of a dome are the radial lines of masonry that extend from the crown down to the springing 11 The central dome of the Hagia Sophia uses the ribbed method which accommodates a ring of windows between the ribs at the base of the dome The central dome of St Peter s Basilica also uses this method nbsp A sail vault illustration nbsp A saucer dome Louisiana U S nbsp An umbrella dome Florence ItalyHistory editEarly history and simple domes edit Main article History of early and simple domes nbsp Apache wigwam by Edward S Curtis c 1903Cultures from pre history to modern times constructed domed dwellings using local materials Although it is not known when the first dome was created sporadic examples of early domed structures have been discovered The earliest discovered may be four small dwellings made of Mammoth tusks and bones The first was found by a farmer in Mezhirich Ukraine in 1965 while he was digging in his cellar and archaeologists unearthed three more 87 They date from 19 280 11 700 BC 88 In modern times the creation of relatively simple dome like structures has been documented among various indigenous peoples around the world The wigwam was made by Native Americans using arched branches or poles covered with grass or hides The Efe people of central Africa construct similar structures using leaves as shingles 89 Another example is the igloo a shelter built from blocks of compact snow and used by the Inuit among others The Himba people of Namibia construct desert igloos of wattle and daub for use as temporary shelters at seasonal cattle camps and as permanent homes by the poor 90 Extraordinarily thin domes of sun baked clay 20 feet in diameter 30 feet high and nearly parabolic in curve are known from Cameroon 91 The historical development from structures like these to more sophisticated domes is not well documented That the dome was known to early Mesopotamia may explain the existence of domes in both China and the West in the first millennium BC 92 Another explanation however is that the use of the dome shape in construction did not have a single point of origin and was common in virtually all cultures long before domes were constructed with enduring materials 93 Corbelled stone domes have been found from the Neolithic period in the ancient Near East and in the Middle East to Western Europe from antiquity 94 95 The kings of Achaemenid Persia held audiences and festivals in domical tents derived from the nomadic traditions of central Asia 96 Simple domical mausoleums existed in the Hellenistic period 97 The remains of a large domed circular hall in the Parthian capital city of Nyssa has been dated to perhaps the first century AD showing the existence of a monumental domical tradition in Central Asia that had hitherto been unknown and which seems to have preceded Roman Imperial monuments or at least to have grown independently from them 98 It likely had a wooden dome 99 nbsp Etchmiadzin cathedral dome Persian domes edit Main article History of Persian domes See also Gonbad nbsp Sheikh Lotfallah Mosque Isfahan Iran Persian architecture likely inherited an architectural tradition of dome building dating back to the earliest Mesopotamian domes 100 Due to the scarcity of wood in many areas of the Iranian plateau and Greater Iran domes were an important part of vernacular architecture throughout Persian history 101 The Persian invention of the squinch a series of concentric arches forming a half cone over the corner of a room enabled the transition from the walls of a square chamber to an octagonal base for a dome in a way reliable enough for large constructions and domes moved to the forefront of Persian architecture as a result 102 Pre Islamic domes in Persia are commonly semi elliptical with pointed domes and those with conical outer shells being the majority of the domes in the Islamic periods 103 The area of north eastern Iran was along with Egypt one of two areas notable for early developments in Islamic domed mausoleums which appear in the tenth century 104 The Samanid Mausoleum in Transoxiana dates to no later than 943 and is the first to have squinches create a regular octagon as a base for the dome which then became the standard practice Cylindrical or polygonal plan tower tombs with conical roofs over domes also exist beginning in the 11th century 101 The Seljuk Empire s notables built tomb towers called Turkish Triangles as well as cube mausoleums covered with a variety of dome forms Seljuk domes included conical semi circular and pointed shapes in one or two shells Shallow semi circular domes are mainly found from the Seljuk era The double shell domes were either discontinuous or continuous 105 The domed enclosure of the Jameh Mosque of Isfahan built in 1086 7 by Nizam al Mulk was the largest masonry dome in the Islamic world at that time had eight ribs and introduced a new form of corner squinch with two quarter domes supporting a short barrel vault In 1088 Taj al Molk a rival of Nizam al Mulk built another dome at the opposite end of the same mosque with interlacing ribs forming five pointed stars and pentagons This is considered the landmark Seljuk dome and may have inspired subsequent patterning and the domes of the Il Khanate period The use of tile and of plain or painted plaster to decorate dome interiors rather than brick increased under the Seljuks 101 Beginning in the Ilkhanate Persian domes achieved their final configuration of structural supports zone of transition drum and shells and subsequent evolution was restricted to variations in form and shell geometry Characteristic of these domes are the use of high drums and several types of discontinuous double shells and the development of triple shells and internal stiffeners occurred at this time The construction of tomb towers decreased 106 The 7 5 meter wide double dome of Soltan Bakht Agha Mausoleum 1351 1352 is the earliest known example in which the two shells of the dome have significantly different profiles which spread rapidly throughout the region 107 The development of taller drums also continued into the Timurid period 101 The large bulbous fluted domes on tall drums that are characteristic of 15th century Timurid architecture were the culmination of the Central Asian and Iranian tradition of tall domes with glazed tile coverings in blue and other colors 21 The domes of the Safavid dynasty 1501 1732 are characterized by a distinctive bulbous profile and are considered the last generation of Persian domes They are generally thinner than earlier domes and are decorated with a variety of colored glazed tiles and complex vegetal patterns and they were influential on those of other Islamic styles such as the Mughal architecture of India 108 An exaggerated style of onion dome on a short drum as can be seen at the Shah Cheragh 1852 1853 first appeared in the Qajar period Domes have remained important in modern mausoleums and domed cisterns and icehouses remain common sights in the countryside 101 Chinese domes edit nbsp Model of the Lei Cheng Uk Han Tomb 25 220 AD Very little has survived of ancient Chinese architecture due to the extensive use of timber as a building material Brick and stone vaults used in tomb construction have survived and the corbeled dome was used rarely in tombs and temples 109 The earliest true domes found in Chinese tombs were shallow cloister vaults called simian jieding derived from the Han use of barrel vaulting Unlike the cloister vaults of western Europe the corners are rounded off as they rise 110 The first known example is a brick tomb dating from the end of the Western Han period near the modern city of Xiangcheng in Henan Province These four sided domes used small interlocking bricks and enabled a square space near the entrance of a tomb large enough for several people that may have been used for funeral ceremonies The interlocking brick technique was rapidly adopted and four sided domes became widespread outside Henan by the end of the first century AD 111 A model of a tomb found with a shallow true dome from the late Han Dynasty 206 BC 220 AD can be seen at the Guangzhou Museum Canton 112 Another the Lei Cheng Uk Han Tomb found in Hong Kong in 1955 has a design common among Eastern Han Dynasty 25 AD 220 AD tombs in South China a barrel vaulted entrance leading to a domed front hall with barrel vaulted chambers branching from it in a cross shape It is the only such tomb that has been found in Hong Kong and is exhibited as part of the Hong Kong Museum of History 113 114 During the Three Kingdoms period 220 280 the cross joint dome siyuxuanjinshi was developed under the Wu and Western Jin dynasties south of the Yangtze River with arcs building out from the corners of a square room until they met and joined at the center These domes were stronger had a steeped angle and could cover larger areas than the relatively shallow cloister vaults Over time they were made taller and wider There were also corbel vaults called diese although these are the weakest type 115 Some tombs of the Song Dynasty 960 1279 have beehive domes 112 Roman and Byzantine domes edit Main article History of Roman and Byzantine domes See also List of Roman domes nbsp Painting by Giovanni Paolo Pannini of the Pantheon in Rome Roman domes are found in baths villas palaces and tombs oculi are common features 116 They are customarily hemispherical in shape and partially or totally concealed on the exterior To buttress the horizontal thrusts of a large hemispherical masonry dome the supporting walls were built up beyond the base to at least the haunches of the dome and the dome was then also sometimes covered with a conical or polygonal roof 117 Domes reached monumental size in the Roman Imperial period 118 Roman baths played a leading role in the development of domed construction in general and monumental domes in particular Modest domes in baths dating from the 2nd and 1st centuries BC are seen in Pompeii in the cold rooms of the Terme Stabiane and the Terme del Foro 118 119 However the extensive use of domes did not occur before the 1st century AD 120 The growth of domed construction increases under Emperor Nero and the Flavians in the 1st century AD and during the 2nd century Centrally planned halls become increasingly important parts of palace and palace villa layouts beginning in the 1st century serving as state banqueting halls audience rooms or throne rooms 121 The Pantheon a temple in Rome completed by Emperor Hadrian as part of the Baths of Agrippa is the most famous best preserved and largest Roman dome 122 Segmented domes made of radially concave wedges or of alternating concave and flat wedges appear under Hadrian in the 2nd century and most preserved examples of this style date from this period 123 In the 3rd century Imperial mausoleums began to be built as domed rotundas rather than as tumulus structures or other types following similar monuments by private citizens 124 The technique of building lightweight domes with interlocking hollow ceramic tubes further developed in North Africa and Italy in the late third and early fourth centuries 125 In the 4th century Roman domes proliferated due to changes in the way domes were constructed including advances in centering techniques and the use of brick ribbing 126 The material of choice in construction gradually transitioned during the 4th and 5th centuries from stone or concrete to lighter brick in thin shells 127 Baptisteries began to be built in the manner of domed mausoleums during the 4th century in Italy The octagonal Lateran baptistery or the baptistery of the Holy Sepulchre may have been the first and the style spread during the 5th century 128 By the 5th century structures with small scale domed cross plans existed across the Christian world 129 With the end of the Western Roman Empire domes became a signature feature of the church architecture of the surviving Eastern Roman or Byzantine Empire 130 6th century church building by the Emperor Justinian used the domed cross unit on a monumental scale and his architects made the domed brick vaulted central plan standard throughout the Roman east This divergence with the Roman west from the second third of the 6th century may be considered the beginning of a Byzantine architecture 131 Justinian s Hagia Sophia was an original and innovative design with no known precedents in the way it covers a basilica plan with dome and semi domes Periodic earthquakes in the region have caused three partial collapses of the dome and necessitated repairs 132 nbsp Originally a church Hagia Sophia 532 537 by Byzantine emperor Justinian the Great was the largest cathedral in the world for nearly a thousand years Cross domed units a more secure structural system created by bracing a dome on all four sides with broad arches became a standard element on a smaller scale in later Byzantine church architecture 133 134 The Cross in square plan with a single dome at the crossing or five domes in a quincunx pattern became widely popular in the Middle Byzantine period c 843 1204 135 136 133 It is the most common church plan from the tenth century until the fall of Constantinople in 1453 137 Resting domes on circular or polygonal drums pierced with windows eventually became the standard style with regional characteristics 138 In the Byzantine period domes were normally hemispherical and had with occasional exceptions windowed drums All of the surviving examples in Constantinople are ribbed or pumpkin domes with the divisions corresponding to the number of windows Roofing for domes ranged from simple ceramic tile to more expensive more durable and more form fitting lead sheeting Metal clamps between stone cornice blocks metal tie rods and metal chains were also used to stabilize domed construction 139 The technique of using double shells for domes although revived in the Renaissance originated in Byzantine practice 140 Arabic and Western European domes edit Main article History of medieval Arabic and Western European domes nbsp The Dome of the Rock in JerusalemThe Syria and Palestine area has a long tradition of domical architecture including wooden domes in shapes described as conoid or similar to pine cones When the Arab Muslim forces conquered the region they employed local craftsmen for their buildings and by the end of the 7th century the dome had begun to become an architectural symbol of Islam 141 In addition to religious shrines such as the Dome of the Rock domes were used over the audience and throne halls of Umayyad palaces and as part of porches pavilions fountains towers and the calderia of baths Blending the architectural features of both Byzantine and Persian architecture the domes used both pendentives and squinches and were made in a variety of shapes and materials 142 Although architecture in the region would decline following the movement of the capital to Iraq under the Abbasids in 750 mosques built after a revival in the late 11th century usually followed the Umayyad model 143 Early versions of bulbous domes can be seen in mosaic illustrations in Syria dating to the Umayyad period They were used to cover large buildings in Syria after the eleventh century 144 Italian church architecture from the late sixth century to the end of the eighth century was influenced less by the trends of Constantinople than by a variety of Byzantine provincial plans 145 With the crowning of Charlemagne as a new Roman Emperor Byzantine influences were largely replaced in a revival of earlier Western building traditions Occasional exceptions include examples of early quincunx churches at Milan and near Cassino 145 Another is the Palatine Chapel Its domed octagon design was influenced by Byzantine models 146 147 It was the largest dome north of the Alps at that time 148 Venice Southern Italy and Sicily served as outposts of Middle Byzantine architectural influence in Italy 149 The Great Mosque of Cordoba contains the first known examples of the crossed arch dome type 150 The use of corner squinches to support domes was widespread in Islamic architecture by the 10th and 11th centuries 135 After the ninth century mosques in North Africa often have a small decorative dome over the mihrab Additional domes are sometimes used at the corners of the mihrab wall at the entrance bay or on the square tower minarets 151 Egypt along with north eastern Iran was one of two areas notable for early developments in Islamic mausoleums beginning in the 10th century 97 Fatimid mausoleums were mostly simple square buildings covered by a dome Domes were smooth or ribbed and had a characteristic Fatimid keel shape profile 152 Domes in Romanesque architecture are generally found within crossing towers at the intersection of a church s nave and transept which conceal the domes externally 153 They are typically octagonal in plan and use corner squinches to translate a square bay into a suitable octagonal base 8 They appear in connection with basilicas almost throughout Europe between 1050 and 1100 154 The Crusades beginning in 1095 also appear to have influenced domed architecture in Western Europe particularly in the areas around the Mediterranean Sea 155 The Knights Templar headquartered at the site built a series of centrally planned churches throughout Europe modeled on the Church of the Holy Sepulchre with the Dome of the Rock also an influence 156 In southwest France there are over 250 domed Romanesque churches in the Perigord region alone 157 The use of pendentives to support domes in the Aquitaine region rather than the squinches more typical of western medieval architecture strongly implies a Byzantine influence 55 Gothic domes are uncommon due to the use of rib vaults over naves and with church crossings usually focused instead by a tall steeple but there are examples of small octagonal crossing domes in cathedrals as the style developed from the Romanesque 158 Star shaped domes found at the Moorish palace of the Alhambra in Granada Spain the Hall of the Abencerrajes c 1333 91 and the Hall of the two Sisters c 1333 54 are extraordinarily developed examples of muqarnas domes 158 In the first half of the fourteenth century stone blocks replaced bricks as the primary building material in the dome construction of Mamluk Egypt and over the course of 250 years around 400 domes were built in Cairo to cover the tombs of Mamluk sultans and emirs 159 Dome profiles were varied with keel shaped bulbous ogee stilted domes and others being used On the drum angles were chamfered or sometimes stepped externally and triple windows were used in a tri lobed arrangement on the faces 160 Bulbous cupolas on minarets were used in Egypt beginning around 1330 spreading to Syria in the following century 161 In the fifteenth century pilgrimages to and flourishing trade relations with the Near East exposed the Low Countries of northwest Europe to the use of bulbous domes in the architecture of the Orient and such domes apparently became associated with the city of Jerusalem Multi story spires with truncated bulbous cupolas supporting smaller cupolas or crowns became popular in the sixteenth century 162 Russian domes edit nbsp Gilded onion domes of the Cathedral of the Annunciation Moscow Kremlin The multidomed church is a typical form of Russian church architecture that distinguishes Russia from other Orthodox nations and Christian denominations Indeed the earliest Russian churches built just after the Christianization of Kievan Rus were multi domed which has led some historians to speculate about how Russian pre Christian pagan temples might have looked Examples of these early churches are the 13 domed wooden Saint Sophia Cathedral in Novgorod 989 and the 25 domed stone Desyatinnaya Church in Kiev 989 996 The number of domes typically has a symbolical meaning in Russian architecture for example 13 domes symbolize Christ with 12 Apostles while 25 domes means the same with an additional 12 Prophets of the Old Testament The multiple domes of Russian churches were often comparatively smaller than Byzantine domes 163 164 nbsp Saint Basil s Cathedral 1555 61 in Moscow Russia Its distinctive onion domes date to the 1680s Plentiful timber in Russia made wooden domes common and at least partially contributed to the popularity of onion domes which were easier to shape in wood than in masonry 165 The earliest stone churches in Russia featured Byzantine style domes however by the Early Modern era the onion dome had become the predominant form in traditional Russian architecture The onion dome is a dome whose shape resembles an onion after which they are named Such domes are often larger in diameter than the drums they sit on and their height usually exceeds their width The whole bulbous structure tapers smoothly to a point Though the earliest preserved Russian domes of such type date from the 16th century illustrations from older chronicles indicate they have existed since the late 13th century Like tented roofs which were combined with and sometimes replaced domes in Russian architecture since the 16th century onion domes initially were used only in wooden churches Builders introduced them into stone architecture much later and continued to make their carcasses of either of wood or metal on top of masonry drums 166 Russian domes are often gilded or brightly painted A dangerous technique of chemical gilding using mercury had been applied on some occasions until the mid 19th century most notably in the giant dome of Saint Isaac s Cathedral The more modern and safe method of gold electroplating was applied for the first time in gilding the domes of the Cathedral of Christ the Saviour in Moscow the tallest Eastern Orthodox church in the world 167 Ottoman domes edit nbsp Selimiye Mosque dome in Edirne TurkeyThe rise of the Ottoman Empire and its spread in Asia Minor and the Balkans coincided with the decline of the Seljuk Turks and the Byzantine Empire Early Ottoman buildings for almost two centuries after 1300 were characterized by a blending of Ottoman culture and indigenous architecture and the pendentive dome was used throughout the empire 168 The Byzantine dome form was adopted and further developed 21 Ottoman architecture made exclusive use of the semi spherical dome for vaulting over even very small spaces influenced by the earlier traditions of both Byzantine Anatolia and Central Asia 169 The smaller the structure the simpler the plan but mosques of medium size were also covered by single domes 170 The earliest Ottoman mosques were single oblong rooms with either simple tiled pitched roofs of wood or a wooden interior dome Most of these wooden domes have been lost to fires and replaced by flat ceilings The earliest masonry domes covered square single room mosques the archetype of Ottoman architecture citation needed Examples include the Mosque of Orhan Gazi in Gebze and Karagoz Bey Mosque in Mostar 171 This domed square unit is the defining element of the three basic Ottoman mosque plans the single unit mosque multi unit mosque and eyvan or iwan mosque citation needed The multi unit mosque uses several domed squares of similar size along the length of a mosque or across its width or both with the central dome sometimes larger than the others citation needed A style common in the Bursa period and known as the Bursa type is like a duplication of the single domed square with one long space divided by an arch into two square bays that are each covered by a dome A variation of this type has the room covered by one dome and one semi dome with additional side chambers A multi domed style derived from Seljuk architecture is that of the Ulu Camii or Great Mosque which consists of a number of domes of the same size supported by pillars citation needed The eyvan mosque type the eyvan being derived from Seljuk architecture uses domed square units in a variety of sizes heights and details with only the possible pair of side units being similar sizes citation needed Early experiments with large domes include the domed square mosques of Cine and Mudurnu under Bayezid I and the later domed zawiya mosques at Bursa The Uc Serefeli Mosque at Edirne developed the idea of the central dome being a larger version of the domed modules used throughout the rest of the structure to generate open space This idea became important to the Ottoman style as it developed 169 nbsp Blue Mosque in Istanbul a World Heritage Site and example of the classical style period of Ottoman architecture showing Byzantine influence The Beyazidiye Mosque 1501 1506 in Istanbul begins the Classical period in Ottoman architecture in which the great Imperial Mosques with variations resemble the former Byzantine basilica of Hagia Sophia in having a large central dome with semi domes of the same span to the east and west citation needed Hagia Sophia s central dome arrangement is faithfully reproduced in three Ottoman mosques in Istanbul the Beyazidiye Mosque the Kilic Ali Pasha Mosque and the Suleymaniye Mosque 172 Three other Imperial mosques in Istanbul also add semi domes to the north and south doing away with the basilica plan Sehzade Camii Sultan Ahmed I Camii and Yeni Cami citation needed The peak of this classical period which lasted into the 17th century came with the architecture of Mimar Sinan citation needed In addition to large Imperial mosques he produced hundreds of other monuments including medium sized mosques such as the Mihrimah Sokollu and Rustem Pasha Mosque and the tomb of Suleiman the Magnificent 173 Suleymaniye Mosque built in Constantinople modern Istanbul from 1550 to 1557 has a main dome 53 meters high with a diameter of 26 5 meters At the time it was built the dome was the highest in the Ottoman Empire when measured from sea level but lower from the floor of the building and smaller in diameter than that of the nearby Hagia Sophia Another Classical domed mosque type is like the Byzantine church of Sergius and Bacchus the domed polygon within a square Octagons and hexagons were common such as those of Uc Serefeli Mosque 1437 1447 and Selimiye Mosque in Edirne citation needed The Selimiye Mosque was the first structure built by the Ottomans that had a larger dome than that of the Hagia Sophia The dome rises above a square bay Corner semi domes convert this into an octagon which muqarnas transition to a circular base The dome has an average internal diameter of about 31 5 meters while that of Hagia Sophia averages 31 3 meters 174 Designed and built by architect Mimar Sinan between 1568 and 1574 when he finished it he was 86 years old and he considered the mosque his masterpiece The first large Imperial Mosque of Istanbul in the imported Baroque style was the Nuruosmaniye Mosque 1748 1755 One of the finest was the Laleli Mosque of 1759 1764 citation needed Italian Renaissance domes edit Main article History of Italian Renaissance domes nbsp The Cathedral of Florence with Brunelleschi s dome ItalyFilippo Brunelleschi s octagonal brick domical vault over Florence Cathedral was built between 1420 and 1436 and the lantern surmounting the dome was completed in 1467 The dome is 42 meters wide and made of two shells 175 The dome is not itself Renaissance in style although the lantern is closer 176 A combination of dome drum pendentives and barrel vaults developed as the characteristic structural forms of large Renaissance churches following a period of innovation in the later fifteenth century 177 Florence was the first Italian city to develop the new style followed by Rome and then Venice 178 Brunelleschi s domes at San Lorenzo and the Pazzi Chapel established them as a key element of Renaissance architecture 179 His plan for the dome of the Pazzi Chapel in Florence s Basilica of Santa Croce 1430 52 illustrates the Renaissance enthusiasm for geometry and for the circle as geometry s supreme form This emphasis on geometric essentials would be very influential 180 De re aedificatoria written by Leon Battista Alberti around 1452 recommends vaults with coffering for churches as in the Pantheon and the first design for a dome at St Peter s Basilica in Rome is usually attributed to him although the recorded architect is Bernardo Rossellino This would culminate in Bramante s 1505 06 projects for a wholly new St Peter s Basilica marking the beginning of the displacement of the Gothic ribbed vault with the combination of dome and barrel vault which proceeded throughout the sixteenth century 181 Bramante s initial design was for a Greek cross plan with a large central hemispherical dome and four smaller domes around it in a quincunx pattern Work began in 1506 and continued under a succession of builders over the next 120 years 182 The dome was completed by Giacomo della Porta and Domenico Fontana 182 The publication of Sebastiano Serlio s treatise one of the most popular architectural treatises ever published was responsible for the spread of the oval in late Renaissance and Baroque architecture throughout Italy Spain France and central Europe 183 The Villa Capra also known as La Rotunda was built by Andrea Palladio from 1565 to 1569 near Vicenza Its highly symmetrical square plan centers on a circular room covered by a dome and it proved highly influential on the Georgian architects of 18th century England architects in Russia and architects in America Thomas Jefferson among them Palladio s two domed churches in Venice are San Giorgio Maggiore 1565 1610 and Il Redentore 1577 92 the latter built in thanksgiving for the end of a bad outbreak of plague in the city 184 The spread of the Renaissance style dome outside of Italy began with central Europe although there was often a stylistic delay of a century or two 185 South Asian domes edit Main article History of South Asian domes nbsp The Taj Mahal in Agra India has large onion domeDomes first appeared in South Asia during the medieval era They were generally constructed with stone brick and mortar and iron dowels and cramps Centering was made from timber and bamboo The use of iron cramps to join adjacent stones was known in Classical India and was used at the base of domes for hoop reinforcement The synthesis of styles created by this introduction of new forms to the Hindu tradition of trabeate construction created a distinctive architecture 186 Domes in pre Mughal India have a standard squat circular shape with a lotus design and bulbous finial at the top derived from Hindu architecture Because the Hindu architectural tradition did not include arches flat corbels were used to transition from the corners of the room to the dome rather than squinches 21 In contrast to Persian and Ottoman domes the domes of Indian tombs tend to be more bulbous 187 nbsp The Shah Jahan Mosque s main dome in Thatta Pakistan has tiles arranged in a stellate pattern to represent the night sky The earliest examples include the half domes of the late 13th century tomb of Balban and the small dome of the tomb of Khan Shahid which were made of roughly cut material and would have needed covering surface finishes 188 Under the Lodi dynasty there was a large proliferation of tomb building with octagonal plans reserved for royalty and square plans used for others of high rank and the first double dome was introduced to India in this period 189 The first major Mughal building is the domed tomb of Humayun built between 1562 and 1571 by a Persian architect The central double dome covers an octagonal central chamber about 15 meters wide and is accompanied by small domed chattri made of brick and faced with stone 190 Chatris the domed kiosks on pillars characteristic of Mughal roofs were adopted from their Hindu use as cenotaphs 191 The fusion of Persian and Indian architecture can be seen in the dome shape of the Taj Mahal the bulbous shape derives from Persian Timurid domes and the finial with lotus leaf base is derived from Hindu temples 21 The Gol Gumbaz or Round Dome is one of the largest masonry domes in the world It has an internal diameter of 41 15 meters and a height of 54 25 meters 192 The dome was the most technically advanced built in the Deccan 193 The last major Islamic tomb built in India was the tomb of Safdar Jang 1753 54 The central dome is reportedly triple shelled with two relatively flat inner brick domes and an outer bulbous marble dome although it may actually be that the marble and second brick domes are joined everywhere but under the lotus leaf finial at the top 194 Early modern period domes edit Main article History of early modern period domes nbsp The dome of St Paul s Cathedral in LondonIn the early sixteenth century the lantern of the Italian dome spread to Germany gradually adopting the bulbous cupola from the Netherlands 195 Russian architecture strongly influenced the many bulbous domes of the wooden churches of Bohemia and Silesia and in Bavaria bulbous domes less resemble Dutch models than Russian ones Domes like these gained in popularity in central and southern Germany and in Austria in the seventeenth and eighteenth centuries particularly in the Baroque style and influenced many bulbous cupolas in Poland and Eastern Europe in the Baroque period However many bulbous domes in eastern Europe were replaced over time in the larger cities during the second half of the eighteenth century in favor of hemispherical or stilted cupolas in the French or Italian styles 196 The construction of domes in the sixteenth and seventeenth centuries relied primarily on empirical techniques and oral traditions rather than the architectural treatises of the times which avoided practical details This was adequate for domes up to medium size with diameters in the range of 12 to 20 meters Materials were considered homogeneous and rigid with compression taken into account and elasticity ignored The weight of materials and the size of the dome were the key references Lateral tensions in a dome were counteracted with horizontal rings of iron stone or wood incorporated into the structure 197 Over the course of the seventeenth and eighteenth centuries developments in mathematics and the study of statics led to a more precise formalization of the ideas of the traditional constructive practices of arches and vaults and there was a diffusion of studies on the most stable form for these structures the catenary curve 76 Robert Hooke who first articulated that a catenary arch was comparable to an inverted hanging chain may have advised Wren on how to achieve the crossing dome of St Paul s Cathedral Wren s structural system became the standard for large domes well into the 19th century 198 The ribs in Guarino Guarini s San Lorenzo and Il Sidone were shaped as catenary arches 199 The idea of a large oculus in a solid dome revealing a second dome originated with him 200 He also established the oval dome as a reconciliation of the longitudinal plan church favored by the liturgy of the Counter Reformation and the centralized plan favored by idealists 201 Because of the imprecision of oval domes in the Rococo period drums were problematic and the domes instead often rested directly on arches or pendentives 202 In the eighteenth century the study of dome structures changed radically with domes being considered as a composition of smaller elements each subject to mathematical and mechanical laws and easier to analyse individually rather than being considered as whole units unto themselves 76 Although never very popular in domestic settings domes were used in a number of 18th century homes built in the Neo Classical style 203 In the United States most public buildings in the late 18th century were only distinguishable from private residences because they featured cupolas 204 Modern period domes edit Main article History of modern period domes nbsp Geodesic domes of the Eden Project in United Kingdom nbsp The concrete dome of Saint Sava was entirely built from prefabricated slabs It was hydraulically lifted from the ground to 40 m height by lift slab method 1935 2004The historicism of the 19th century led to many domes being re translations of the great domes of the past rather than further stylistic developments especially in sacred architecture 205 New production techniques allowed for cast iron and wrought iron to be produced both in larger quantities and at relatively low prices during the Industrial Revolution Russia which had large supplies of iron has some of the earliest examples of iron s architectural use 206 Excluding those that simply imitated multi shell masonry metal framed domes such as the elliptical dome of Royal Albert Hall in London 57 to 67 meters in diameter and the circular dome of the Halle au Ble in Paris may represent the century s chief development of the simple domed form 207 Cast iron domes were particularly popular in France 179 nbsp The 201 Dome Mosque in Gopalpur Tangail Bangladesh The practice of building rotating domes for housing large telescopes was begun in the 19th century with early examples using papier mache to minimize weight 208 Unique glass domes springing straight from ground level were used for hothouses and winter gardens 209 Elaborate covered shopping arcades included large glazed domes at their cross intersections 210 The large domes of the 19th century included exhibition buildings and functional structures such as gasometers and locomotive sheds 211 The first fully triangulated framed dome was built in Berlin in 1863 by Johann Wilhelm Schwedler and by the start of the 20th century similarly triangulated frame domes had become fairly common 212 213 Vladimir Shukhov was also an early pioneer of what would later be called gridshell structures and in 1897 he employed them in domed exhibit pavilions at the All Russia Industrial and Art Exhibition 213 Domes built with steel and concrete were able to achieve very large spans 179 In the late 19th and early 20th centuries the Guastavino family a father and son team who worked on the eastern seaboard of the United States further developed the masonry dome using tiles set flat against the surface of the curve and fast setting Portland cement which allowed mild steel bar to be used to counteract tension forces 214 The thin domical shell was further developed with the construction by Walther Bauersfeld of two planetarium domes in Jena Germany in the early 1920s They consisting of a triangulated frame of light steel bars and mesh covered by a thin layer of concrete 215 These are generally taken to be the first modern architectural thin shells 216 These are also considered the first geodesic domes 69 Geodesic domes have been used for radar enclosures greenhouses housing and weather stations 217 Architectural shells had their heyday in the 1950s and 1960s peaking in popularity shortly before the widespread adoption of computers and the finite element method of structural analysis 218 The first permanent air supported membrane domes were the radar domes designed and built by Walter Bird after World War II Their low cost eventually led to the development of permanent versions using teflon coated fiberglass and by 1985 the majority of the domed stadiums around the world used this system 219 Tensegrity domes patented by Buckminster Fuller in 1962 are membrane structures consisting of radial trusses made from steel cables under tension with vertical steel pipes spreading the cables into the truss form They have been made circular elliptical and other shapes to cover stadiums from Korea to Florida 220 Tension membrane design has depended upon computers and the increasing availability of powerful computers resulted in many developments being made in the last three decades of the 20th century 221 The higher expense of rigid large span domes made them relatively rare although rigidly moving panels is the most popular system for sports stadiums with retractable roofing 222 223 See also edit nbsp Architecture portal nbsp Wikimedia Commons has media related to Domes nbsp Wikisource has the text of the 1911 Encyclopaedia Britannica article Dome Lists of domes Cupola Vault architecture Rotunda architecture Monolithic dome Copper domes Dome carExcerpts edit Parker 2012 p 97 Dome a cupola the term is derived from the Italian duomo a cathedral the custom of erecting cupolas on those buildings having been so prevalent that the name dome has in the French and English languages been transferred from the church to this kind of roof See Cupola a b Smith 1950 p 6 The domical shape must be distinguished from domical vaulting because the dome both as idea and as method of roofing originated in pliable materials upon a primitive shelter and was later preserved venerated and translated into more permanent materials largely for symbolic and traditional reasons 1 At the primitive level the most prevalent and usually the earliest type of constructed shelter whether a tent pit house earth lodge or thatched cabin was more or less circular in plan and covered by necessity with a curved roof Therefore in many parts of the ancient world the domical shape became habitually associated in men s memories with a central type of structure which was venerated as a tribal and ancestral shelter a cosmic symbol a house of appearances and a ritualistic abode 2 Hence many widely separate cultures whose architecture evolved from primitive methods of construction had some tradition of an ancient and revered shelter which was distinguished by a curved roof usually more or less domical in appearance but sometimes hoop shaped or conical Smith 1950 p 5 To the naive eye of men uninterested in construction the dome it must be realized was first of all a shape and then an idea As a shape which antedated the beginnings of masonry construction It was the memorable feature of an ancient ancestral house It is still a shape visualized and described by such terms as hemisphere beehive onion melon and bulbous In ancient times it was thought of as a tholos pine cone omphalos helmet tegurium kubba kalube maphalia vihdra parasol amalaka tree cosmic egg and heavenly bowl While the modern terms are purely descriptive the ancient imagery both preserved some memory of the origin of the domical shape and conveyed something of the ancestral beliefs and supernatural meanings associated with its form Downey 1946 pp 23 25 26 Architectural historians who deal with the history of the dome have been baffled and sometimes led astray by the peculiar vague ness of some of the literary passages which in some cases form the only evidence for the existence of certain domes or of certain types of domes When the ancient authors mention a dome they often call it a sphaira or a sphairion While inexact in the geometrical sense this is a perfectly comprehensible and justifiable method of describing an architectural element whose most prominent characteristic is its sphericity and that the ancient writers were aware of the inexactitude but also aware of the usefulness of the graphic image is suggested by Procopius reference to the main dome of the Church of the Apostles at Constantinople as tὸ sfairoeides which might be translated the sphere like structure Choricius to the writer s present knowledge is the only writer of this period who is careful enough to note that a dome or a semi dome is a hollow spherical form Naturally if one wished to describe a dome vividly the most arresting feature of its appearance was its sphericity and everybody knew that if you called a dome a sphaira you called it this because it resembled a sphaira and it was understood that a dome was not a sphaira in the geometrical sense This is of course what one would expect and the phenomenon is by no means confined to post classical Greek literature a b Mainstone 2000 p 1 Architecturally the dome may be seen not only as a structure but also as shelter spatial enclosure silhouette or symbolic form with divers connotations stemming from past uses To review all these aspects of its history would be impossible in a brief survey Smith 1950 pp 8 9 The most primitive and natural shape derived directly from a round hut made of pliable materials tied together at the top and covered with leaves skins or thatch was the pointed and slightly bulbous dome which is so common today among the backward tribes of Nubia and Africa Fig 93 This type of dome resembling a truncated pine cone or beehive is preserved in the tholos tombs of the Mediterranean Fig 63 the rock cut tombs of Etruria and Sicily Figs 64 65 in the Syrian qubab huts Fig 88 on the tomb of Bizzos Fig 61 and on many of the early Islamic mosques Figs 38 43 To distinguish this shape of dome from the geometric cone we will call it conoid because of its recognized likeness to the actual pine cone Other types of domical shapes flatter and unpointed were derived from the tent and preserved as tabernacles ciboria and baldachins Figs 144 151 These tent forms however could be puffed up and bulbous owing to the light framework of the roof as is shown by the celestial baldachin above the great altar of Zeus at Pergamum Fig 106 and the Parthian dome among the reliefs of the arch of Septimius Severus at Rome Fig 228 There were also in Syria and other parts of the Roman Empire sacred rustic shelters whose ritualistic and domical coverings sometimes had an outward curving flange at the bottom of the dome as the thatch was bent out to form an overhang Figs 111 117 In other examples the curve of their light domical roof was broken by the horizontal bindings which held the thatch in place Fig 10 The hemispherical shape which is today so commonly associated with the dome undoubtedly acquired its geometric curve largely from the theoretical interests of the Greek mathematicians and the practical considerations of Roman mechanics This Roman standardization of the domical shape which made it easier to construct accurately in brick stone and concrete became the customary form of the antique domical vault a b Dodge 1984 pp 265 267 Domes have been the subject of controversy for more than a century The origins of dome construction and the ways in which it was applied have both been heatedly debated In the light of this two questions arise Have some scholars made too much of these matters thereby creating unnecessary problems and a false controversy And was there really any problem as regards the dome and the square bay The underlying issue however is that of terminology Respected scholars have plunged into the debate only to confuse the situation further by the omission of an adequate definition of terms Where definitions are given they are either inconsistent through the text or do not correspond to those in general use This leads to confusion misunderstanding and problems with domes One thing that most scholars agree upon is that the dome is a kind of vault R J Mainstone defines a dome as A spanning space enclosing structural element circular in plan and commonly hemispherical or nearly so in total form R Krautheimer defines it as a hemispherical vault and the Penguin Dictionary of Architecture gives the following definition A vault of even curvature erected on a circular base The section can be segmental semicircular pointed or bulbous Thus it emerges that the term dome is non specific a blanket word to describe an hemispherical or similar spanning element When such a vault is placed on a circular wall as in the Pantheon in Rome the Temple of Mercury at Bala or the Tor de Schiavi on the Via Praenestina there is little disagreement or variation in the term applied to the roofing element it is a dome Problems start to occur in recent critical literature when such an element is placed over an octagonal polygonal or square bay Dodge 1984 pp 268 270 The Penguin Dictionary of Architecture gives the following definition of a domical vault A vault rising direct on a square or polygonal base the curved surfaces separated by groins In American and some British publications this feature is called a cloister vault and this has given rise to some of the terminological confusion However both Mainstone and Krautheimer who both use the term cloister vault do point out that it is also called a domical vault Mainstone s definition is A vault approximating to the dome but polygonal rather than circular in plan and Krautheimer s definition is A vault composed of four eight or twelve curved surfaces as would result from the interpenetration of two four or six barrel vaults of equal height and diameter also four sided eight sided etc dome These two definitions exactly describe the Domus Augstana sic and Bostra examples Rivoira a sic definition of the Domus Aurea dome demonstrates how unnecessarily convoluted some terms get He refers to it as a cloister vault dome He also calls the domical vault the ungroined cloister dome The term domical vault can be applied to such a vault on a square base that is made up of four panels as Krautheimer points out It is with this particular kind of domical vault that even more acute problems of definition have arisen in the past Butler in his description of the South Baths at Bostra calls the octagonal dome referred to above an eight sided dome The two square rooms of the complex R and T on Butler s plan were also vaulted That over room R is still intact and Butler refers to it as a cloistered vault or a square dome The first term as already demonstrated is the American term for the domical vault but by its qualification as a square dome has caused some scholars to make some rather misguided statements Ward Perkins refers to the structure as a domical vault Creswell refers to the square dome of the Praetorium at Musmiye ancient Phaena at the same time giving the French and German terms voute en arc de cloitre and klosterkuppel It is obvious from these that he means the domical or cloister vault However Swift calls this kind of vault the so called cloister dome on a square plan By this definition it becomes obvious what kind of structure he is referring to and he also gives Musmiye as an example a b Chilton 2000 p 131 In the mind of an engineer a dome is structure with a very distinct behavior It is a synclastically curved three dimensional surface primarily stressed in compression under its own weight and applied loading and made of a material resistant to such forces usually masonry or some form of concrete Circumferential tension forces that may occur at the base of a dome are usually resisted by a tension ring However a dictionary definition of the word dome may be less precise For instance in a typical concise dictionary a dome is defined as dome n amp v t l Stately building mansion poet rounded vault as roof with circular elliptical or polygonal base large cupola natural vault canopy of sky trees etc rounded summit of hill etc hence domed domic al dome like domy 2 v t Cover with shape as dome F f It duomo cathedral dome amp direct f L domus house In the past the stately building often had a masonry dome whereas due to the rapid expansion in structural systems that have become available in the 20th century this is now less likely to be the case This has led to many modern large span structures being described as domes when their primary load bearing system does not exactly accord with the engineering definition Some actually work almost entirely in tension although they still may be more or less dome shaped for example the Millennium Dome in Greenwich This paper therefore addresses the conflict that now exists between the precise engineering and more general dictionary definitions of the term dome by reviewing the development of various types of lightweight and tensile domes during the 20th century Osborne 2004 p 11 While dome has become the most used English geometric and architectural term for a large hemispherical approximately hemispherical or spheroidal vault Delbridge 1981 cupola is the older term Saylor 1994 p 56 dome a hemispherical roof form Parker 2003 Definition dome ARCHITECTURE A hemispherical roof Gorse Johnston amp Pritchard 2012 p 115 dome 1 A structure that has a hemispherical roof 2 A curved layer of rock strata formed by an upward fold Coates Brooker amp Stone 2009 p 76 A dome is a structural element conventionally used to cover large spaces It is defined as an arch that has been rotated around its vertical axis Guedes 2016 p 174 The dome may be regarded as the three dimensional counterpart of the arch In its true circular form a vertical arch is rotated around a vertical axis and sweeps out at every level a continuous circular horizontal ring Loads can be transmitted both along the meridian lines of the vertical arches and around the horizontal rings Palmer 2016 p 123 The dome which is created from an arch turned on its axis 360 degrees is traditionally considered one of the most important Ancient Roman architectural inventions Dodge 1984 p 277 Dome A vault of usually even curvature erected on a circular base whose elements are set radially rather than corbelled The profile can vary The term can be applied in a general way to other domical forms Such as the domical and sail vault a b Trachtenberg amp Hyman 1986 p 583 Dome A curved vault that is erected on a circular base and that is semicircular pointed or bulbous in section If raised over a square or polygonal base transitional squinches or pendentives must be inserted at the corners of the base to transform it into a near circle a b Fleming Honour amp Pevsner 1991 pp 126 127 Dome Vault of even curvature on a circular base The section can be segmental semicircular pointed or bulbous If a dome is to be erected on a square base members must be interpolated at the corners to mediate between the square and the circle They can be pendentives of squinches A pendentive is a spherical triangle its curvature is that of a dome whose diameter is the diagonal is the diagonal of the initial square The triangle is carried to the height which allows the erection on its top horizontal of the dome proper A squinch is either an arch or arches of increasing radius projecting one in front of the other or horizontal arches projecting in the same manner If squinches are placed in the corners of the square and enough arches are erected on them they will result in a suitable base line for the dome In all these cases the dome will have the diameter of the length of one side of the square It can be placed direct on the circular base line when this is achieved or a drum usually with windows can be interpolated If the dome has no drum and is segmental it is called a saucer dome If it has no drum and is semicircular it is called a calotte Another method of developing a dome out of a square is to take the diagonal of the square as the diameter of the dome In this case the dome starts as if by pendentives but their curvature is then continued without any break Such domes are called sail vaults because they resemble a sail with the four corners fixed and the wind blowing into it A domical vault is not a dome proper If on a square base four webs cells rise to a point separated by groins see vault The same can be done on a polygonal base An umbrella parachute pumpkin or melon dome is a dome on a circular base but also divided into individual webs each of which however has a base line curved segmentally in plan and curved in elevation a b Curl 2003 p 220 A domical vault is not a true dome A dome is a vault with a segmental semicircular bulbous or pointed section rising from a circular base a b Ambrose Harris amp Stone 2008 p 41 A concave structural element erected on a circular base and usually the shape of a semi sphere A dome has a curved surface and functions much like an arch but provides support in all directions Larger domes often have two or even three layers the top and bottom are decorative while the centre layer is structural and supports the other two Domes can be segmental semicircular pointed or bulbous a b Clarke 2010 p 79 dome A vault of even curvature over a circular base the section can be segmental semicircular pointed or bulbous If a vault is erected over a square base squinches or pendentives must be inserted at the corners to connect the dome to the base Ching 2011 p 62 A vaulted structure having a circular plan and usually the form of a portion of a sphere so constructed as to exert an equal thrust in all directions a b Burden 2012 p 155 Dome a curved roof structure that spans an area on a circular base producing an equal thrust in all directions A cross section of the dome can be semicircular pointed or segmented Kurtz 2004 p 378 Dome 1 A construction in the form of a spherical cap realized on a circular or polygonal plan 2 The internal surface of a dome Syn with CUPOLA 3 A surface of revolution generated by any meridian curve turning around a vertical axis Horizontal sections are circular rings and the dome picks up on its bearings by a circular belt 4 Syn with CAVITY OPEN POT HOLE Ching Jarzombek amp Prakash 2007 p 761 A vaulted structure having a circular or polygonal plan and usually the form of a portion of a sphere so constructed so as to exert an equal thrust in all directions Davies amp Jokiniemi 2008 p 118 Dome 1 a hollow flattened or raised hemispherical roof structure often of masonry which rests on a circular square or polygonal base See below See types of dome illustration See classical temple illustration bulbous dome see onion dome drum dome glass dome half dome melon dome see umbrella dome onion dome parachute dome see umbrella dome pendentive dome pumpkin dome see umbrella dome sail dome sail vault saucer dome semi dome see half dome umbrella dome 2 see domelight a b Parker 2012 p 90 Cupola Ital a concave ceiling either hemispherical or of any other curve covering a circular or polygonal area also a roof the exterior of which is either one of these forms usually called a dome and in Latin tholus Davies amp Jokiniemi 2012 p 143 Dome 1 a hollow flattened or raised hemispherical roof structure often of masonry which rests on a circular square or polygonal base See Types included as separate entries are listed below bulbous dome see onion dome drum dome half dome melon dome see umbrella dome onion dome parachute dome see umbrella dome pendentive dome pumpkin dome see umbrella dome sail dome sail vault saucer dome semi dome see half dome umbrella dome 2 see domelight Cowan amp Smith 1998 p 73 A vault of double curvature both curves being convex upwards Most domes are portions of a sphere however it is possible to have a dome of non spherical curvature on a circular plan or to have a dome on a non circular plan such as an ellipse an oval or a rectangle a b McNeil 2002 p 879 A dome is a convex rounded roof covering the whole or a part of a building with a base on the horizontal plane which is circular elliptical or polygonal In vertical section the dome may be hemispherical partly elliptical saucer shaped or formed like a bulb the so called onion domes to be seen in eastern Europe a b Curl amp Wilson 2015 pp 236 237 Cupola essentially a species of vault constructed on a circular elliptical or polygonal plan bulbous segmental semicircular or pointed in vertical section It can be built on top of a structure the plan of which is identical to that of the dome if that structure s wall is circular or elliptical it is a drum often pierced with windows as in a rotunda However domes usually provide cover for a square or rectangular planned building or compartment so adjustments are made to facilitate the transition from the square to the circular elliptical or polygonal base of the cupola or dome This is achieved by means of pendentives fragments of a sail vault resembling a species of concave distorted almost triangular spandrels rising up from the corner at the top of the right angled compartment to the circular or elliptical base of the drum or cupola or squinches small arch or series of parallel arches of increasing radius spanning the angle of the square compartment Both the drum and cupola will have a diameter the same dimension as the side of the square on which the whole structure stands Types of dome include calotte low cupola or saucer dome of segmental vertical section like a skull cap cloister vault as domical vault domical vault cloister vault not a true dome but formed of four or more depending on the shape of the base cells or webs forming groins where they touch vertically and rising to a point melon as parachute Pantheon low dome on the exterior often stepped resembling that of the Pantheon in Rome and coffered on the interior widely copied by Neo Classical architects parachute melon pumpkin or umbrella dome standing on a scalloped circular base and formed of individual webs segmental on plan joined on groins or ribs Each web has a concave interior and convex exterior so it resembles a parachute rather than an umbrella pumpkin as parachute sail dome dome resembling a billowing sail over a square compartment with its diameter the same dimension as the diagonal instead of the side of the square below enabling the structure to rise as though on pendentives but continuing without interruption Pendentives are really part of a sail dome and themselves are a species of sail vault umbrella as parachute Heyman 1997 p 27 A dome is a rounded vault forming a roof over a large interior space The rounded vault of the dome can take many forms Perhaps the simplest of these is a shell of revolution in which every horizontal section is circular an egg in an egg cup is a shell of this kind Mainstone 2000 p 1 Structurally I take the term dome to denote as it normally does a doubly curved form supported from below and acting primarily in arching compression as it spans the space it encloses a b Harris 2005 p 319 Dome 1 A curved roof structure spanning an area often hemispherical in shape 2 A square prefabricated pan form used in two way joist waffle concrete floor construction 3 A vault substantially hemispherical in shape but sometimes slightly pointed or bulbous a ceiling of similar form Also see geodesic dome and saucer dome a b Brett 2012 p 20 Dome a vaulted roof normally circular or polygonal in plan and semicircular segmental or pointed in section See also Cupola and Squinch Hourihane 2012 p 301 Rounded vault covering an interior space A very small dome roof for example a lantern mounted on the eye of a dome proper e g St Paul s Cathedral London is known as a cupola In Italian cupola is used for a monumental dome A dome can either be composed of curved segments or be a shell of revolution The dome at Florence Cathedral by Filippo Brunelleschi 1377 1446 is segmental octangular at every section A shell of revolution is generated by rotating an arch about a vertical central axis To produce a hemispherical surface the arch will be semicircular but and shape of arch similarly rotated will give rise to a shell of revolution and every horizontal cross section is still circular The simplest form of dome is that of such a shell of revolution for example the inner masonry dome of St Paul s Cathedral is roughly hemispherical and has an open eye while the main dome is conical but both are shells of revolution as is the surface of the timber outer dome A dome can have either a single or a double shell a b Harris 2013 Dome 1 A curved roof structure spanning an area often hemispherical in shape 2 A vault substantially hemispherical in shape but sometimes slightly pointed or bulbous a ceiling of similar form a b Murray Murray amp Jones 2013 p 151 dome A structure that can be either circular in plan or oval hexagonal octagonal or a combination of these forms It may have a high profile or hemispherical or flattened Palmisano amp Totaro 2010 p 519 The absence of a common language is one of the reasons why nowadays there is a very big gap between the Architect and the Engineer The introduction of new materials and techniques during the Industrial Revolution and the born of the first polytechnics in the 18th century led to a different cultural approach to the design causing the born of different languages between Architects and Engineers Nowadays with the widespread of very complicated works of the architecture there is a huge need to bridge the gap between Architects and Engineers In this context focusing the attention on masonry domes this paper aims at highlighting that Load Path Method seems to open new prospects in the search for a common language between engineers and architects to give voice in harmony and in a single design to formal aesthetical functional and structural aspects According to LPM a dome can be seen as a system of meridian arches joined by the parallel circles The arches draw the paths of the vertical loads while the parallel circles draw the paths of the unbalanced thrusts In fact differently from the arches in dome the equilibrium of the thrusts in every node is always possible because of the presence of the parallels a b Chilton 2000 p 143 Although the name dome was appropriately applied in the strict engineering sense to historical long span structures of synclastic form working in compression and using heavy materials with little tensile strength this is not correct for many of the new lightweight structural systems However the name dome in common usage has come to refer to almost any long span roofing system The answer therefore to the question posed in the title of this paper is It depends A synclastic surface acting predominantly in compression is clearly a dome by name by form and by engineering definition whilst a structure acting mainly in tension such as the Georgia Dome is a dome in name alone Between these extremes there are many shades of distinction Jannasch 2016 pp 745 746 A funicular masonry dome experiences no hoop stresses whether tensile or compressive so it is always on the verge of bursting Shallow spheric domes maintain compressive stresses in each course and are therefore more stable than the ideal funicular form Viable non funicular domes also include Herrero s flat vault at the Escorial and Mackenzie s 1840 concept of an inverted fan vault Masonry domes are often explained as free standing arches rotated around a central axis or as half arches swept between a tension ring at the base and an ocular compression ring at the top Such concepts aren t entirely inaccurate but they are far from complete They undervalue or ignore the circumferential compression in each course upon which the rising dome depends and which remains active in many completed structures They also tend to ignore the vertical shear resistance that prevents inner and upper portions of the dome from crashing vertically down through outer and lower portions and the horizontal shear resistance that allows lower parts of the dome to contain the thrust of upper parts Visualizing the dome as a rotated arch implies that the bedding faces between subsequent courses of masonry need to be more or less normal to the section which is the case in an arch but not the case in a dome Lastly free standing arches must be thick enough to contain their funicular This is not true of domes That the arch and funicular don t really explain of the structural behavior of domes should be clear from real world examples The conical domes at Pisa and elsewhere for example the shallow domes of Byzantium and the circular vaults at the Escorial are far from funicular None of them would succeed if un rotated into arches References edit Smith 1950 p 5 Huerta 2007 p 212 a b c d e f g h i Hourihane 2012 p 302 Nobile amp Bares 2015 p 4 Wright 2009 pp 179 180 188 Dodge 1984 pp 271 276 279 a b c Catholic a b Fletcher Fleming Honour amp Pevsner 1991 p 114 Technical 1872 p 252 a b c Dumser 2010 p 436 Fleming Honour amp Pevsner 1991 p 203 Curl amp Wilson 2015 p 236 a b Ching 2011 p 63 a b c d e f g Fleming Honour amp Pevsner 1991 p 127 Arun 2006 pp 304 305 a b Nuttgens 1997 p 123 a b Ward 1915 p 2 Fleming Honour amp Pevsner 1991 pp 127 419 Fleming Honour amp Pevsner 1991 pp 127 329 a b c d e f Peterson 1996 p 68 Mainstone 2001 p 121 MacDonald 1958 pp 2 3 7 Kuban 1987 p 73 Giustina 2003 p 1037 Denny 2010 p 139 Minke 2012 pp 57 59 127 a b Hourihane 2012 p 242 Hourihane 2012 p 301 a b Robison 1991 p 395 Gye 1988 p 142 Gye 1988 pp 141 142 Fernandez amp Hernandez Ros 1989 Rovero amp Tonietti 2012 p 183 Blockley 2014 p 22 Larson amp Tyas 2003 pp 32 38 Smith 1950 pp 51 53 Grupico 2011 pp 3 8 Smith 1950 p 53 Smith 1950 pp 53 56 79 Grabar 1963 pp 195 197 a b Kayili 2005 p 9 Ousterhout 2008a p 13 Baumann amp Haggh 1990 pp 208 209 Baumann amp Haggh 1990 p 202 Hocker 2000 pp 181 183 Dror 2011 p 163 Wright 2009 p 188 a b Makowski 1962 p 62 a b c Chen amp Lui 2005 pp 24 18 Chen amp Lui 2005 pp 24 18 24 19 Ramaswamy amp Eekhout 2002 p 141 Chen amp Lui 2005 pp 24 2 24 18 Saka 2007 p 595 a b Moffett Fazio amp Wodehouse 2003 a b Dodge 1984 p 273 Newman amp Pevnser 1972 p 527 Dien 2007 p 80 Ward 1915 p 9 a b Hourihane 2012 p 303 Dodge 1984 p 268 Sear 1983 p 79 Como 2013 p 320 Kern Karydis 2012 pp 362 363 Hassan Mazloomi amp Omer 2010 p 105 Fuentes amp Huerta 2010 pp 346 352 a b c d Arun 2006 p 304 a b c Langmead amp Garnaut 2001 p 131 Ambrose amp Tripeny 2011 p 36 Denny 2010 p 140 Smith 1950 pp 8 9 Hamilton 1983 p 42 Born 1944 pp 220 221 Huerta 2007 p 231 a b c Bagliani 2009 Fleming Honour amp Pevsner 1991 pp 127 463 Fleming Honour amp Pevsner 1991 p 462 Dodge 1984 p 274 Bellini 2017 p 1 Burckhardt 1987 p 58 a b Dodge 1984 p 263 Gye 1988 pp 142 143 a b c d Yaghan 2003 p 69 Krautheimer 1980 pp 121 132 Ward 1915 pp 116 117 Hitchcock Palmer Pettitt amp Bahn 2005 p 24 Wilkie amp Morelli 2000 Crandall 2000 pp 34 35 Creswell 1915a p 155 Hill 1996 p 69 Smith 1950 p 6 Leick 2003 p 64 Mainstone 2001 p 116 Smith 1950 pp 81 82 a b Grabar 1963 p 194 Grabar 1963 p 192 Ashkan amp Ahmad 2009 p 99 Spiers 1911 p 957 a b c d e O Kane 1995 Creswell 1915a p 148 Ashkan amp Ahmad 2009 p 113 Grabar 1963 pp 192 194 Ashkan amp Ahmad 2009 pp 102 104 105 113 Ashkan amp Ahmad 2009 pp 105 110 Ashkan amp Ahmad 2009 p 106 Ashkan amp Ahmad 2009 pp 102 108 109 Kuiper 2011 pp 266 267 Dien 2007 pp 79 80 Nickel 2015 p 55 a b Needham amp Gwei Djen 1962 p 167 lcsd 2014 Tsan wing amp Kin wah 2001 p 294 Dien 2007 p 79 Lehmann 1945 pp 247 254 255 Smith 1950 p 9 a b Lehmann 1945 p 249 Winter 2006 p 130 Lancaster 2005 p 49 Krautheimer 1986 p 77 Lehmann 1945 p 255 Lancaster 2005 pp 46 50 Johnson 2009 McClendon 2005 p 16 Lancaster 2005 p 161 Krautheimer 1986 p 238 Smith 1950 p 56 Krautheimer 1986 p 239 Spiers 1911 p 958 Krautheimer 1986 pp 203 242 Freely amp Cakmak 2004 pp 90 93 95 96 a b Ousterhout 2008b p 358 Ousterhout 2008a p 202 a b Krautheimer 1986 p 340 Darling 2004 p xliii Rosser 2011 p 137 Krautheimer 1986 p 379 Ousterhout 2008a p 214 Wittkower 1963 p 185 Smith 1950 p 43 Arce 2006 p 209 Bloom amp Blair 2009 pp 111 112 Born 1944 p 208 a b Krautheimer 1986 p 402 Dupre 2001 p 5 Bullough 1991 pp 57 89 Langmead amp Garnaut 2001 p 60 Krautheimer 1986 p 405 Fuentes amp Huerta 2010 pp 346 347 Kuban 1985 pp 2 4 Kuiper 2011 p 165 Stephenson Hammond amp Davi 2005 p 172 Porter 1928 p 48 Jeffery 2010 p 72 Howard 1991 pp 65 67 Stewart 2008 p 202 a b Stephenson Hammond amp Davi 2005 p 174 Cipriani amp Lau 2006 pp 696 698 Hillenbrand 1994 p 318 Born 1944 p 209 Born 1944 pp 209 213 Kies skypalace Cowan 1977 p 7 Zagraevsky galteh Hassan Mazloomi amp Omer 2010 pp 125 127 a b Kuban 1987 p 75 Kuban 1987 pp 93 94 Hassan Mazloomi amp Omer 2010 p 107 Kuban 1987 p 84 Kuban 1987 p 91 Kuban 1987 p 89 Schutz 2002 pp 356 357 Frankl amp Crossley 2000 p 213 Betts 1993 p 5 Nuttgens 1997 p 181 a b c Hourihane 2012 p 304 Stephenson Hammond amp Davi 2005 pp 175 176 Betts 1993 pp 5 7 a b Nuttgens 1997 p 184 Huerta 2007 pp 230 232 Nuttgens 1997 pp 187 189 Melaragno 1991 p 73 Tappin 2003 pp 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galvanotechnology in Russia Russian archived from the original on 2012 03 05 Gayle Margot Gayle Carol 1998 Cast iron architecture in America the significance of James Bogardus illustrated ed W W Norton amp Company ISBN 978 0 393 73015 9 Giustina Irene 2003 On the art and the culture of domes Construction in Milan and Lombardy in the late sixteenth and in the first half of the seventeenth century PDF Proceedings of the First International Congress on Construction History Madrid Spain Sociedad Espanola de Historia de la Construccion pp 1033 1042 Gorse Christopher Johnston David Pritchard Martin 2012 A Dictionary of Construction Surveying and Civil Engineering OUP Oxford ISBN 978 0 191 04494 6 Grabar Oleg December 1963 The Islamic Dome Some Considerations Journal of the Society of Architectural Historians 22 4 191 198 doi 10 2307 988190 JSTOR 988190 Grabar Oleg March 1990 From Dome of Heaven to Pleasure Dome Journal of the Society of Architectural Historians 49 1 15 21 doi 10 2307 990496 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illustrated ed Thomas Telford ISBN 978 0 7277 2939 2 About Russian Domes and Cupolas skypalace org archived from the original on 2011 07 28 Smith Earl Baldwin 1950 The Dome A Study in the History of Ideas Princeton NJ Princeton University Press ISBN 978 0 691 03875 9 Spiers Richard Phene 1911 Vault In Chisholm Hugh ed Encyclopaedia Britannica Vol 27 11th ed Cambridge University Press pp 956 961 Stephenson Davis Hammond Victoria Davi Keith F 2005 Visions of Heaven the Dome in European Architecture illustrated ed Princeton Architectural Press ISBN 978 1 56898 549 7 Stewart Charles Anthony 2008 Domes of Heaven The Domed Basilicas of Cyprus illustrated ed ProQuest LLC ISBN 978 0 549 75556 2 Tabbaa Yasser 1985 The Muqarnas Dome Its Origin and Meaning Muqarnas 3 61 74 doi 10 2307 1523084 JSTOR 1523084 Tappin Stuart 2003 The Structural Development of Masonry Domes in India In Huerta S ed Proceedings of the First International Congress on Construction History Madrid 20th 24th January 2003 PDF Madrid I Juan de Herrera pp 1941 1952 ISBN 978 84 9728 070 9 Archived from the original PDF on 2009 12 11 Trachtenberg Marvin Hyman Isabelle 1986 Architecture from Prehistory to Post modernism The Western Tradition H N Abrams ISBN 978 0 810 91077 5 Tsan wing NG Kin wah LEUNG 2001 Deformation Survey for the Preservation of Lei Cheng Uk Han Tomb The 10th FIG International Symposium on Deformation Measurements Session VIII Structural Deformations 19 22 March 2001 PDF Orange California US pp 294 301 ISBN 978 0 86078 686 3 Archived from the original PDF on 6 February 2004 a href Template Cite book html title Template Cite book cite book a CS1 maint location missing publisher link Wallis Kendall 2010 Bearing Bandmann s Meaning A Translator s Introduction by Kendall Willis In Bandmann Gunter ed Early Medieval Architecture as Bearer of Meaning Translated by Kendall Wallis Columbia University Press ISBN 978 0 231 50172 9 Ward Clarence 1915 Mediaeval Church Vaulting illustrated ed Princeton Princeton University Press ISBN 978 0 404 06836 3 Wilkie David S Morelli Gilda A 2000 Forest Foragers A Day in the Life of Efe Pygmies in the Democratic Republic of Congo Cultural Survival Quarterly 24 3 Retrieved December 7 2010 Winter Frederick E 2006 Studies in Hellenistic Architecture illustrated ed Toronto Canada University of Toronto Press ISBN 978 0 8020 3914 9 Wittkower Rudolf 1963 S Maria della Salute Scenographic Architecture and the Venetian Baroque in Kleinbauer W Eugene ed Modern Perspectives in Western Art History An Anthology of Twentieth Century Writings on the Visual Arts Medieval Academy Reprints for Teaching vol 25 University of Toronto Press published 1989 pp 165 192 ISBN 978 0 8020 6708 1 Wittkower Rudolf 1999 Art and Architecture in Italy 1600 1750 III Late Baroque Revised by Joseph Conners and Jennifer Montagu 6th ed Yale University Press ISBN 978 0 300 07941 8 Wright G R H 2009 Ancient Building Technology Volume 3 Construction 2 Vols illustrated ed BRILL ISBN 978 9 004 17745 1 Yaghan Mohammad Ali Jalal 2003 Gadrooned Dome s Muqarnas Corbel Analysis and Decoding Historical Drawings Architectural Science Review 46 1 69 88 doi 10 1080 00038628 2003 9696966 S2CID 109278304 Zagraevsky Sergey The shapes of domes of ancient Russian churches Russian RusArch ru archived from the original on 2013 01 16 Retrieved from https en wikipedia org w index php title Dome amp oldid 1194058775, wikipedia, wiki, book, books, library,

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