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Mortar (masonry)

Mortar is a workable paste which hardens to bind building blocks such as stones, bricks, and concrete masonry units, to fill and seal the irregular gaps between them, spread the weight of them evenly, and sometimes to add decorative colors or patterns to masonry walls. In its broadest sense, mortar includes pitch, asphalt, and soft mud or clay, as those used between mud bricks, as well as cement mortar. The word "mortar" comes from Old French mortier, "builder's mortar, plaster; bowl for mixing." (13c.).[1]

Mortar holding weathered bricks

Cement mortar becomes hard when it cures, resulting in a rigid aggregate structure; however, the mortar functions as a weaker component than the building blocks and serves as the sacrificial element in the masonry, because mortar is easier and less expensive to repair than the building blocks. Bricklayers typically make mortars using a mixture of sand, a binder, and water. The most common binder since the early 20th century is Portland cement, but the ancient binder lime (producing lime mortar) is still used in some specialty new construction. Lime, lime mortar, and gypsum in the form of plaster of Paris are used particularly in the repair and repointing of historic buildings and structures, so that the repair materials will be similar in performance and appearance to the original materials. Several types of cement mortars and additives exist.

Ancient mortar edit

 
Roman mortar on display at Chetham's School of Music.
 
Workers prepare mortar in a trough. A 10th-century sculpture from the Korogho church, Georgia.

The first mortars were made of mud and clay,[2] as demonstrated in the 10th millennia BCE buildings of Jericho, and the 8th millennia BCE of Ganj Dareh.[2]

According to Roman Ghirshman, the first evidence of humans using a form of mortar was at the Mehrgarh of Baluchistan in what is today Pakistan, built of sun-dried bricks in 6500 BCE.[3]

Gypsum mortar, also called plaster of Paris, was used in the construction of many ancient structures. It is made from gypsum, which requires a lower firing temperature. It is therefore easier to make than lime mortar and sets up much faster, which may be a reason it was used as the typical mortar in ancient, brick arch and vault construction. Gypsum mortar is not as durable as other mortars in damp conditions.[4]

In the Indian subcontinent, multiple cement types have been observed in the sites of the Indus Valley civilization, with gypsum appearing at sites such as the Mohenjo-daro city-settlement, which dates to earlier than 2600 BCE.

Gypsum cement that was "light grey and contained sand, clay, traces of calcium carbonate, and a high percentage of lime" was used in the construction of wells, drains, and on the exteriors of "important looking buildings." Bitumen mortar was also used at a lower-frequency, including in the Great Bath at Mohenjo-daro.[5][6]

In early Egyptian pyramids, which were constructed during the Old Kingdom (~2600–2500 BCE), the limestone blocks were bound by a mortar of mud and clay, or clay and sand.[7] In later Egyptian pyramids, the mortar was made of gypsum, or lime.[8] Gypsum mortar was essentially a mixture of plaster and sand and was quite soft.

2nd millennia BCE Babylonian constructions used lime or pitch for mortar.

Historically, building with concrete and mortar next appeared in Greece. The excavation of the underground aqueduct of Megara revealed that a reservoir was coated with a pozzolanic mortar 12 mm thick. This aqueduct dates back to c. 500 BCE.[9] Pozzolanic mortar is a lime based mortar, but is made with an additive of volcanic ash that allows it to be hardened underwater; thus it is known as hydraulic cement. The Greeks obtained the volcanic ash from the Greek islands Thira and Nisiros, or from the then Greek colony of Dicaearchia (Pozzuoli) near Naples, Italy. The Romans later improved the use and methods of making what became known as pozzolanic mortar and cement.[8] Even later, the Romans used a mortar without pozzolana using crushed terra cotta, introducing aluminum oxide and silicon dioxide into the mix. This mortar was not as strong as pozzolanic mortar, but, because it was denser, it better resisted penetration by water.[10]

Hydraulic mortar was not available in ancient China, possibly due to a lack of volcanic ash. Around 500 CE, sticky rice soup was mixed with slaked lime to make an inorganic−organic composite sticky rice mortar that had more strength and water resistance than lime mortar.[11][12]

It is not understood how the art of making hydraulic mortar and cement, which was perfected and in such widespread use by both the Greeks and Romans, was then lost for almost two millennia. During the Middle Ages when the Gothic cathedrals were being built, the only active ingredient in the mortar was lime. Since cured lime mortar can be degraded by contact with water, many structures suffered over the centuries from wind-blown rain.

Ordinary Portland cement mortar edit

 
Laying bricks with Portland cement mortar
 
Mortar mixed inside a 5-gallon bucket using clean water and mortar from a bag.

Ordinary Portland cement mortar, commonly known as OPC mortar or just cement mortar, is created by mixing powdered Ordinary Portland Cement, fine aggregate and water.

It was invented in 1794 by Joseph Aspdin and patented on 18 December 1824, largely as a result of efforts to develop stronger mortars. It was made popular during the late nineteenth century, and had by 1930 became more popular than lime mortar as construction material. The advantages of Portland cement is that it sets hard and quickly, allowing a faster pace of construction. Furthermore, fewer skilled workers are required in building a structure with Portland cement.

As a general rule, however, Portland cement should not be used for the repair or repointing of older buildings built in lime mortar, which require the flexibility, softness and breathability of lime if they are to function correctly.[13][14]

In the United States and other countries, five standard types of mortar (available as dry pre-mixed products) are generally used for both new construction and repair. Strengths of mortar change based on the mix ratio for each type of mortar, which are specified under the ASTM standards. These premixed mortar products are designated by one of the five letters, M, S, N, O, and K. Type M mortar is the strongest, and Type K the weakest. The mix ratio is always expressed by volume of  .

Mortar Type Portland Cement Lime Sand
M 1 1/4 3-1/2
S 1 1/2 4-1/2
N 1 1 6
O 1 2 9
K 1 3 12

These type letters are apparently taken from the alternate letters of the words "MaSoN wOrK". [15]

Polymer cement mortar edit

Polymer cement mortars (PCM) are the materials which are made by partially replacing the cement hydrate binders of conventional cement mortar with polymers. The polymeric admixtures include latexes or emulsions, redispersible polymer powders, water-soluble polymers, liquid thermoset resins and monomers.[16] Although they increase cost of mortars when used as an additive, they enhance properties. Polymer mortar has low permeability that may be detrimental to moisture accumulation when used to repair a traditional brick, block or stone wall. It is mainly designed for repairing concrete structures. The use of recovered plastics in mortars is being researched and is gaining ground.[17] Depolymerizing PET to use as a polymeric binder to enhance mortars is actively being studied.[18][19][20]

Lime mortar edit

The setting speed can be increased by using impure limestone in the kiln, to form a hydraulic lime that will set on contact with water. Such a lime must be stored as a dry powder. Alternatively, a pozzolanic material such as calcined clay or brick dust may be added to the mortar mix. Addition of a pozzolanic material will make the mortar set reasonably quickly by reaction with the water.

It would be problematic to use Portland cement mortars to repair older buildings originally constructed using lime mortar. Lime mortar is softer than cement mortar, allowing brickwork a certain degree of flexibility to adapt to shifting ground or other changing conditions. Cement mortar is harder and allows little flexibility. The contrast can cause brickwork to crack where the two mortars are present in a single wall.

Lime mortar is considered breathable in that it will allow moisture to freely move through and evaporate from the surface. In old buildings with walls that shift over time, cracks can be found which allow rain water into the structure. The lime mortar allows this moisture to escape through evaporation and keeps the wall dry. Re−pointing or rendering an old wall with cement mortar stops the evaporation and can cause problems associated with moisture behind the cement.

Pozzolanic mortar edit

Pozzolana is a fine, sandy volcanic ash. It was originally discovered and dug at Pozzuoli, nearby Mount Vesuvius in Italy, and was subsequently mined at other sites, too. The Romans learned that pozzolana added to lime mortar allowed the lime to set relatively quickly and even under water. Vitruvius, the Roman architect, spoke of four types of pozzolana. It is found in all the volcanic areas of Italy in various colours: black, white, grey and red. Pozzolana has since become a generic term for any siliceous and/or aluminous additive to slaked lime to create hydraulic cement.[21]

Finely ground and mixed with lime it is a hydraulic cement, like Portland cement, and makes a strong mortar that will also set under water.

Radiocarbon dating edit

As the mortar hardens, the current atmosphere is encased in the mortar and thus provides a sample for analysis. Various factors affect the sample and raise the margin of error for the analysis.[22][23][24][25] Radiocarbon dating of mortar began as early as the 1960s, soon after the method was established (Delibrias and Labeyrie 1964; Stuiver and Smith 1965; Folk and Valastro 1976). The very first data were provided by van Strydonck et al. (1983), Heinemeier et al.(1997) and Ringbom and Remmer (1995). Methodological aspects were further developed by different groups (an international team headed by Åbo Akademi University, and teams from CIRCE, CIRCe, ETHZ, Poznań, RICH and Milano-Bicocca laboratory. To evaluate the different anthropogenic carbon extraction methods for radiocarbon dating as well as to compare the different dating methods, i.e. radiocarbon and OSL, the first intercomparison study (MODIS) was set up and published in 2017.[26][27]

See also edit

References edit

  • Concrete blowouts in Post-tension slabs
  • Technical data sheets, Mortar Industry Association, www.mortar.org.uk
  1. ^ "mortar n.1" entry, OED.
  2. ^ a b Artioli, G. (2019). "The Vitruvian legacy: mortars and binders before and after the Roman world" (PDF). EMU Notes in Mineralogy. 20: 151–202.
  3. ^ Khan, Aurangzeb. "Ancient Bricks". Aurangzeb Khan. Retrieved 2013-02-16.
  4. ^ (PDF). Archived from the original (PDF) on 2013-05-25. Retrieved 2014-04-03.
  5. ^ O. P. Jaggi (1969), History of science and technology in India, Volume 1, Atma Ram, 1969, ... In some of the important-looking buildings, gypsum cement of a light gray colour was used on the outside to prevent the mud mortar from crumbling down. In a very well constructed drain of the Intermediate period, the mortar which was used contains a high percentage of lime instead of gypsum. Bitumen was found to have been used only at one place in Mohenjo-daro. This was in the construction of the great bath ...
  6. ^ Abdur Rahman (1999), History of Indian science, technology, and culture, Oxford University Press, 1999, ISBN 978-0-19-564652-8, ... Gypsum cement was found to have been used in the construction of a well in Mohenjo-daro. The cement was light grey and contained sand, clay, traces of calcium carbonate, and a high percentage of lime ...
  7. ^ "Egypt: Egypt's Ancient, Small, Southern, Step Pyramids". Touregypt.net. 2011-06-21. Retrieved 2012-11-03.
  8. ^ a b . Hcia.gr. Archived from the original on 2012-02-09. Retrieved 2012-11-03.
  9. ^ (PDF). Archived from the original (PDF) on 2009-03-05. Retrieved 2008-01-04.{{cite web}}: CS1 maint: archived copy as title (link)
  10. ^ "American Scientist Online". Americanscientist.org. Retrieved 2012-11-03.
  11. ^ "Revealing the Ancient Chinese Secret of Sticky Rice Mortar". Science Daily. Retrieved 23 June 2010.
  12. ^ Yang Fuwei, Zhang Bingjian, Ma Qinglin (2010). "Study of Sticky Rice−Lime Mortar Technology for the Restoration of Historical Masonry Construction". Accounts of Chemical Research. 43 (6): 936–944. doi:10.1021/ar9001944. PMID 20455571.{{cite journal}}: CS1 maint: multiple names: authors list (link)
  13. ^ Masonry: the best of Fine homebuilding.. Newtown, CT: Taunton Press, 1997. Print. 113.
  14. ^ "Information about Lime - LimeWorks.us". limeworks.us. Retrieved 2016-11-02.
  15. ^ "ASTM C 270-51T". ASTM International. Retrieved 27 September 2019.
  16. ^ Polymer modified cements and repair mortars. Daniels LJ, PhD thesis Lancaster University 1992
  17. ^ Khan, Kaffayatullah; Jalal, Fazal E.; Iqbal, Mudassir; Khan, Muhammad Imran; Amin, Muhammad Nasir; Al-Faiad, Majdi Adel (2022-04-23). "Predictive Modeling of Compression Strength of Waste PET/SCM Blended Cementitious Grout Using Gene Expression Programming". Materials. 15 (9): 3077. Bibcode:2022Mate...15.3077K. doi:10.3390/ma15093077. ISSN 1996-1944. PMC 9102582. PMID 35591409.
  18. ^ Dębska, Bernardeta; Brigolini Silva, Guilherme Jorge (January 2021). "Mechanical Properties and Microstructure of Epoxy Mortars Made with Polyethylene and Poly(Ethylene Terephthalate) Waste". Materials. 14 (9): 2203. Bibcode:2021Mate...14.2203D. doi:10.3390/ma14092203. ISSN 1996-1944. PMC 8123358. PMID 33923013.
  19. ^ Thorneycroft, J.; Orr, J.; Savoikar, P.; Ball, R. J. (2018-02-10). "Performance of structural concrete with recycled plastic waste as a partial replacement for sand". Construction and Building Materials. 161: 63–69. doi:10.1016/j.conbuildmat.2017.11.127. ISSN 0950-0618.
  20. ^ Bahij, Sifatullah; Omary, Safiullah; Feugeas, Francoise; Faqiri, Amanullah (2020-07-15). "Fresh and hardened properties of concrete containing different forms of plastic waste – A review". Waste Management. 113: 157–175. doi:10.1016/j.wasman.2020.05.048. ISSN 0956-053X. PMID 32534235. S2CID 219637371.
  21. ^ "pozzolana." Collins English Dictionary - Complete & Unabridged 10th Edition. HarperCollins Publishers. 14 May. 2014. <Dictionary.com http://dictionary.reference.com/browse/pozzolana>
  22. ^ Folk RL, Valastro S (1979). Dating of lime mortar by 14C (Berger R, Suess H. ed.). Proceedings of the Ninth International Conference: Berkeley: University of California Press. pp. 721–730.
  23. ^ Hayen R, Van Strydonck M, Fontaine L, Boudin M, Lindroos A, Heinemeier J, Ringbom A, Michalska D, Hajdas I, Hueglin S, Marzaioli F, Terrasi F, Passariello I, Capano M, Maspero F, Panzeri L, Galli A, Artioli G, Addis A, Secco M, Boaretto E, Moreau C, Guibert P, Urbanova P, Czernik J, Goslar T, Caroselli M (2017). "Mortar dating methodology: intercomparison of available methods". Radiocarbon. 59 (6).
  24. ^ Hayen R, Van Strydonck M, Boaretto E, Lindroos A, Heinemeier J, Ringbom Å, Hueglin S, Michalska D, Hajdas I, Marzaoili F, Maspero F, Galli A, Artioli G, Moreau Ch, Guibert P, Caroselli M (2016). Absolute dating of mortars – integrating chemical and physical techniques to characterize and select the mortar samples. Proceedings of the 4th Historic Mortars Conference - HMC2016. pp. 656–667.{{cite book}}: CS1 maint: multiple names: authors list (link)
  25. ^ Dating Ancient Mortar - American Scientist Online vol. 91, 2003
  26. ^ Hajdas I, Lindroos A, Heinemeier J, Ringbom Å, Marzaioli F, Terrasi F, Passariello I, Capano M, Artioli G, Addis A, Secco M, Michalska D, Czernik J, Goslar T, Hayen R, Van Strydonck M, Fontaine L, Boudin M, Maspero F, Panzeri L, Galli A, Urbanova P, Guibert P (2017). "Preparation and dating of mortar samples—Mortar Dating Inter-comparison Study (MODIS)" (PDF). Radiocarbon. 59 (6): 1845–1858. doi:10.1017/RDC.2017.112. hdl:10281/182038. S2CID 67758123.
  27. ^ Hayen R, Van Strydonck M, Fontaine L, Boudin M, Lindroos A, Heinemeier J, Ringbom A, Michalska D, Hajdas I, Hueglin S, Marzaioli F, Panzeri L, Galli A, Artioli G, Addis A, Secco M, Boaretto E, Moreau C, Guibert P, Urbanova P, Czernik J, Goslar T, Caroselli M (2017). "Mortar dating methodology: intercomparison of available methods". Radiocarbon. 59 (6).

mortar, masonry, mortar, workable, paste, which, hardens, bind, building, blocks, such, stones, bricks, concrete, masonry, units, fill, seal, irregular, gaps, between, them, spread, weight, them, evenly, sometimes, decorative, colors, patterns, masonry, walls,. Mortar is a workable paste which hardens to bind building blocks such as stones bricks and concrete masonry units to fill and seal the irregular gaps between them spread the weight of them evenly and sometimes to add decorative colors or patterns to masonry walls In its broadest sense mortar includes pitch asphalt and soft mud or clay as those used between mud bricks as well as cement mortar The word mortar comes from Old French mortier builder s mortar plaster bowl for mixing 13c 1 Mortar holding weathered bricksCement mortar becomes hard when it cures resulting in a rigid aggregate structure however the mortar functions as a weaker component than the building blocks and serves as the sacrificial element in the masonry because mortar is easier and less expensive to repair than the building blocks Bricklayers typically make mortars using a mixture of sand a binder and water The most common binder since the early 20th century is Portland cement but the ancient binder lime producing lime mortar is still used in some specialty new construction Lime lime mortar and gypsum in the form of plaster of Paris are used particularly in the repair and repointing of historic buildings and structures so that the repair materials will be similar in performance and appearance to the original materials Several types of cement mortars and additives exist Contents 1 Ancient mortar 2 Ordinary Portland cement mortar 3 Polymer cement mortar 4 Lime mortar 5 Pozzolanic mortar 6 Radiocarbon dating 7 See also 8 ReferencesAncient mortar edit nbsp Roman mortar on display at Chetham s School of Music nbsp Workers prepare mortar in a trough A 10th century sculpture from the Korogho church Georgia The first mortars were made of mud and clay 2 as demonstrated in the 10th millennia BCE buildings of Jericho and the 8th millennia BCE of Ganj Dareh 2 According to Roman Ghirshman the first evidence of humans using a form of mortar was at the Mehrgarh of Baluchistan in what is today Pakistan built of sun dried bricks in 6500 BCE 3 Gypsum mortar also called plaster of Paris was used in the construction of many ancient structures It is made from gypsum which requires a lower firing temperature It is therefore easier to make than lime mortar and sets up much faster which may be a reason it was used as the typical mortar in ancient brick arch and vault construction Gypsum mortar is not as durable as other mortars in damp conditions 4 In the Indian subcontinent multiple cement types have been observed in the sites of the Indus Valley civilization with gypsum appearing at sites such as the Mohenjo daro city settlement which dates to earlier than 2600 BCE Gypsum cement that was light grey and contained sand clay traces of calcium carbonate and a high percentage of lime was used in the construction of wells drains and on the exteriors of important looking buildings Bitumen mortar was also used at a lower frequency including in the Great Bath at Mohenjo daro 5 6 In early Egyptian pyramids which were constructed during the Old Kingdom 2600 2500 BCE the limestone blocks were bound by a mortar of mud and clay or clay and sand 7 In later Egyptian pyramids the mortar was made of gypsum or lime 8 Gypsum mortar was essentially a mixture of plaster and sand and was quite soft 2nd millennia BCE Babylonian constructions used lime or pitch for mortar Historically building with concrete and mortar next appeared in Greece The excavation of the underground aqueduct of Megara revealed that a reservoir was coated with a pozzolanic mortar 12 mm thick This aqueduct dates back to c 500 BCE 9 Pozzolanic mortar is a lime based mortar but is made with an additive of volcanic ash that allows it to be hardened underwater thus it is known as hydraulic cement The Greeks obtained the volcanic ash from the Greek islands Thira and Nisiros or from the then Greek colony of Dicaearchia Pozzuoli near Naples Italy The Romans later improved the use and methods of making what became known as pozzolanic mortar and cement 8 Even later the Romans used a mortar without pozzolana using crushed terra cotta introducing aluminum oxide and silicon dioxide into the mix This mortar was not as strong as pozzolanic mortar but because it was denser it better resisted penetration by water 10 Hydraulic mortar was not available in ancient China possibly due to a lack of volcanic ash Around 500 CE sticky rice soup was mixed with slaked lime to make an inorganic organic composite sticky rice mortar that had more strength and water resistance than lime mortar 11 12 It is not understood how the art of making hydraulic mortar and cement which was perfected and in such widespread use by both the Greeks and Romans was then lost for almost two millennia During the Middle Ages when the Gothic cathedrals were being built the only active ingredient in the mortar was lime Since cured lime mortar can be degraded by contact with water many structures suffered over the centuries from wind blown rain Ordinary Portland cement mortar edit nbsp Laying bricks with Portland cement mortar nbsp Mortar mixed inside a 5 gallon bucket using clean water and mortar from a bag Ordinary Portland cement mortar commonly known as OPC mortar or just cement mortar is created by mixing powdered Ordinary Portland Cement fine aggregate and water It was invented in 1794 by Joseph Aspdin and patented on 18 December 1824 largely as a result of efforts to develop stronger mortars It was made popular during the late nineteenth century and had by 1930 became more popular than lime mortar as construction material The advantages of Portland cement is that it sets hard and quickly allowing a faster pace of construction Furthermore fewer skilled workers are required in building a structure with Portland cement As a general rule however Portland cement should not be used for the repair or repointing of older buildings built in lime mortar which require the flexibility softness and breathability of lime if they are to function correctly 13 14 In the United States and other countries five standard types of mortar available as dry pre mixed products are generally used for both new construction and repair Strengths of mortar change based on the mix ratio for each type of mortar which are specified under the ASTM standards These premixed mortar products are designated by one of the five letters M S N O and K Type M mortar is the strongest and Type K the weakest The mix ratio is always expressed by volume of Portland cement lime sand displaystyle text Portland cement lime sand nbsp Mortar Type Portland Cement Lime SandM 1 1 4 3 1 2S 1 1 2 4 1 2N 1 1 6O 1 2 9K 1 3 12These type letters are apparently taken from the alternate letters of the words MaSoN wOrK 15 Polymer cement mortar editPolymer cement mortars PCM are the materials which are made by partially replacing the cement hydrate binders of conventional cement mortar with polymers The polymeric admixtures include latexes or emulsions redispersible polymer powders water soluble polymers liquid thermoset resins and monomers 16 Although they increase cost of mortars when used as an additive they enhance properties Polymer mortar has low permeability that may be detrimental to moisture accumulation when used to repair a traditional brick block or stone wall It is mainly designed for repairing concrete structures The use of recovered plastics in mortars is being researched and is gaining ground 17 Depolymerizing PET to use as a polymeric binder to enhance mortars is actively being studied 18 19 20 Lime mortar editMain article Lime mortar The setting speed can be increased by using impure limestone in the kiln to form a hydraulic lime that will set on contact with water Such a lime must be stored as a dry powder Alternatively a pozzolanic material such as calcined clay or brick dust may be added to the mortar mix Addition of a pozzolanic material will make the mortar set reasonably quickly by reaction with the water It would be problematic to use Portland cement mortars to repair older buildings originally constructed using lime mortar Lime mortar is softer than cement mortar allowing brickwork a certain degree of flexibility to adapt to shifting ground or other changing conditions Cement mortar is harder and allows little flexibility The contrast can cause brickwork to crack where the two mortars are present in a single wall Lime mortar is considered breathable in that it will allow moisture to freely move through and evaporate from the surface In old buildings with walls that shift over time cracks can be found which allow rain water into the structure The lime mortar allows this moisture to escape through evaporation and keeps the wall dry Re pointing or rendering an old wall with cement mortar stops the evaporation and can cause problems associated with moisture behind the cement Pozzolanic mortar editMain article Pozzolana Pozzolana is a fine sandy volcanic ash It was originally discovered and dug at Pozzuoli nearby Mount Vesuvius in Italy and was subsequently mined at other sites too The Romans learned that pozzolana added to lime mortar allowed the lime to set relatively quickly and even under water Vitruvius the Roman architect spoke of four types of pozzolana It is found in all the volcanic areas of Italy in various colours black white grey and red Pozzolana has since become a generic term for any siliceous and or aluminous additive to slaked lime to create hydraulic cement 21 Finely ground and mixed with lime it is a hydraulic cement like Portland cement and makes a strong mortar that will also set under water Radiocarbon dating editAs the mortar hardens the current atmosphere is encased in the mortar and thus provides a sample for analysis Various factors affect the sample and raise the margin of error for the analysis 22 23 24 25 Radiocarbon dating of mortar began as early as the 1960s soon after the method was established Delibrias and Labeyrie 1964 Stuiver and Smith 1965 Folk and Valastro 1976 The very first data were provided by van Strydonck et al 1983 Heinemeier et al 1997 and Ringbom and Remmer 1995 Methodological aspects were further developed by different groups an international team headed by Abo Akademi University and teams from CIRCE CIRCe ETHZ Poznan RICH and Milano Bicocca laboratory To evaluate the different anthropogenic carbon extraction methods for radiocarbon dating as well as to compare the different dating methods i e radiocarbon and OSL the first intercomparison study MODIS was set up and published in 2017 26 27 See also edit nbsp Wikimedia Commons has media related to Mortar masonry Cement accelerator Concrete Energetically modified cement Grout Thick bed mortar technique Thinset TuckpointingReferences editConcrete blowouts in Post tension slabsTechnical data sheets Mortar Industry Association www mortar org uk mortar n 1 entry OED a b Artioli G 2019 The Vitruvian legacy mortars and binders before and after the Roman world PDF EMU Notes in Mineralogy 20 151 202 Khan Aurangzeb Ancient Bricks Aurangzeb Khan Retrieved 2013 02 16 Introduction to Mortars Cemex Corporation PDF Archived from the original PDF on 2013 05 25 Retrieved 2014 04 03 O P Jaggi 1969 History of science and technology in India Volume 1 Atma Ram 1969 In some of the important looking buildings gypsum cement of a light gray colour was used on the outside to prevent the mud mortar from crumbling down In a very well constructed drain of the Intermediate period the mortar which was used contains a high percentage of lime instead of gypsum Bitumen was found to have been used only at one place in Mohenjo daro This was in the construction of the great bath Abdur Rahman 1999 History of Indian science technology and culture Oxford University Press 1999 ISBN 978 0 19 564652 8 Gypsum cement was found to have been used in the construction of a well in Mohenjo daro The cement was light grey and contained sand clay traces of calcium carbonate and a high percentage of lime Egypt Egypt s Ancient Small Southern Step Pyramids Touregypt net 2011 06 21 Retrieved 2012 11 03 a b HCIA 2004 Hcia gr Archived from the original on 2012 02 09 Retrieved 2012 11 03 Archived copy PDF Archived from the original PDF on 2009 03 05 Retrieved 2008 01 04 a href Template Cite web html title Template Cite web cite web a CS1 maint archived copy as title link American Scientist Online Americanscientist org Retrieved 2012 11 03 Revealing the Ancient Chinese Secret of Sticky Rice Mortar Science Daily Retrieved 23 June 2010 Yang Fuwei Zhang Bingjian Ma Qinglin 2010 Study of Sticky Rice Lime Mortar Technology for the Restoration of Historical Masonry Construction Accounts of Chemical Research 43 6 936 944 doi 10 1021 ar9001944 PMID 20455571 a href Template Cite journal html title Template Cite journal cite journal a CS1 maint multiple names authors list link Masonry the best of Fine homebuilding Newtown CT Taunton Press 1997 Print 113 Information about Lime LimeWorks us limeworks us Retrieved 2016 11 02 ASTM C 270 51T ASTM International Retrieved 27 September 2019 Polymer modified cements and repair mortars Daniels LJ PhD thesis Lancaster University 1992 Khan Kaffayatullah Jalal Fazal E Iqbal Mudassir Khan Muhammad Imran Amin Muhammad Nasir Al Faiad Majdi Adel 2022 04 23 Predictive Modeling of Compression Strength of Waste PET SCM Blended Cementitious Grout Using Gene Expression Programming Materials 15 9 3077 Bibcode 2022Mate 15 3077K doi 10 3390 ma15093077 ISSN 1996 1944 PMC 9102582 PMID 35591409 Debska Bernardeta Brigolini Silva Guilherme Jorge January 2021 Mechanical Properties and Microstructure of Epoxy Mortars Made with Polyethylene and Poly Ethylene Terephthalate Waste Materials 14 9 2203 Bibcode 2021Mate 14 2203D doi 10 3390 ma14092203 ISSN 1996 1944 PMC 8123358 PMID 33923013 Thorneycroft J Orr J Savoikar P Ball R J 2018 02 10 Performance of structural concrete with recycled plastic waste as a partial replacement for sand Construction and Building Materials 161 63 69 doi 10 1016 j conbuildmat 2017 11 127 ISSN 0950 0618 Bahij Sifatullah Omary Safiullah Feugeas Francoise Faqiri Amanullah 2020 07 15 Fresh and hardened properties of concrete containing different forms of plastic waste A review Waste Management 113 157 175 doi 10 1016 j wasman 2020 05 048 ISSN 0956 053X PMID 32534235 S2CID 219637371 pozzolana Collins English Dictionary Complete amp Unabridged 10th Edition HarperCollins Publishers 14 May 2014 lt Dictionary com http dictionary reference com browse pozzolana gt Folk RL Valastro S 1979 Dating of lime mortar by 14C Berger R Suess H ed Proceedings of the Ninth International Conference Berkeley University of California Press pp 721 730 Hayen R Van Strydonck M Fontaine L Boudin M Lindroos A Heinemeier J Ringbom A Michalska D Hajdas I Hueglin S Marzaioli F Terrasi F Passariello I Capano M Maspero F Panzeri L Galli A Artioli G Addis A Secco M Boaretto E Moreau C Guibert P Urbanova P Czernik J Goslar T Caroselli M 2017 Mortar dating methodology intercomparison of available methods Radiocarbon 59 6 Hayen R Van Strydonck M Boaretto E Lindroos A Heinemeier J Ringbom A Hueglin S Michalska D Hajdas I Marzaoili F Maspero F Galli A Artioli G Moreau Ch Guibert P Caroselli M 2016 Absolute dating of mortars integrating chemical and physical techniques to characterize and select the mortar samples Proceedings of the 4th Historic Mortars Conference HMC2016 pp 656 667 a href Template Cite book html title Template Cite book cite book a CS1 maint multiple names authors list link Dating Ancient Mortar American Scientist Online vol 91 2003 Hajdas I Lindroos A Heinemeier J Ringbom A Marzaioli F Terrasi F Passariello I Capano M Artioli G Addis A Secco M Michalska D Czernik J Goslar T Hayen R Van Strydonck M Fontaine L Boudin M Maspero F Panzeri L Galli A Urbanova P Guibert P 2017 Preparation and dating of mortar samples Mortar Dating Inter comparison Study MODIS PDF Radiocarbon 59 6 1845 1858 doi 10 1017 RDC 2017 112 hdl 10281 182038 S2CID 67758123 Hayen R Van Strydonck M Fontaine L Boudin M Lindroos A Heinemeier J Ringbom A Michalska D Hajdas I Hueglin S Marzaioli F Panzeri L Galli A Artioli G Addis A Secco M Boaretto E Moreau C Guibert P Urbanova P Czernik J Goslar T Caroselli M 2017 Mortar dating methodology intercomparison of available methods Radiocarbon 59 6 Retrieved from https en wikipedia org w index php title Mortar masonry amp oldid 1178418515, wikipedia, wiki, book, books, library,

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