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Wikipedia

Parachute

A parachute is a device used to slow the motion of an object through an atmosphere by creating drag or, in a ram-air parachute, aerodynamic lift. A major application is to support people, for recreation or as a safety device for aviators, who can exit from an aircraft at height and descend safely to earth.

Paratroopers deploying their parachutes during an exercise

A parachute is usually made of a light, strong fabric. Early parachutes were made of silk. The most common fabric today is nylon. A parachute's canopy is typically dome-shaped, but some are rectangles, inverted domes, and other shapes.

A variety of loads are attached to parachutes, including people, food, equipment, space capsules, and bombs.

History

Middle Ages

In 852, in Córdoba, Spain, the Moorish man Armen Firman attempted unsuccessfully to fly by jumping from a tower while wearing a large cloak. It was recorded that "there was enough air in the folds of his cloak to prevent great injury when he reached the ground."[1]

Early Renaissance

 
The oldest known depiction of a parachute, attributed to Taccola (Italy, 1470s)

The earliest evidence for the true parachute dates back to the Renaissance period.[2] The oldest parachute design appears in a manuscript from the 1470s attributed to Taccola(British Library, Add MS 34113, fol. 200v), showing a free-hanging man clutching a crossbar frame attached to a conical canopy.[3] [4]As a safety measure, four straps ran from the ends of the rods to a waist belt. Although the surface area of the parachute design appears to be too small to offer effective air resistance and the wooden base-frame is superfluous and potentially harmful, the basic concept of a working parachute is apparent.[5]

The design is a marked improvement over another folio (189v), which depicts a man trying to break the force of his fall using two long cloth streamers fastened to two bars, which he grips with his hands.[5]

Shortly after, a more sophisticated parachute was sketched by the polymath Leonardo da Vinci in his Codex Atlanticus (fol. 381v) dated to c. 1485.[3] Here, the scale of the parachute is in a more favorable proportion to the weight of the jumper. A square wooden frame, which alters the shape of the parachute from conical to pyramidal, held open Leonardo's canopy.[5] It is not known whether the Italian inventor was influenced by the earlier design, but he may have learned about the idea through the intensive oral communication among artist-engineers of the time.[6][7] The feasibility of Leonardo's pyramidal design was successfully tested in 2000 by Briton Adrian Nicholas and again in 2008 by the Swiss skydiver Olivier Vietti-Teppa.[8][9] According to historian of technology Lynn White, these conical and pyramidal designs, much more elaborate than early artistic jumps with rigid parasols in Asia, mark the origin of "the parachute as we know it."[2]

 
Fausto Veranzio's parachute design, titled Homo Volans ("Flying Man"), from his Machinae Novae ("New Contraptions", published in 1615 or 1616)

The Croatian polymath and inventor Fausto Veranzio, or Faust Vrančić (1551–1617), examined da Vinci's parachute sketch and kept the square frame but replaced the canopy with a bulging sail-like piece of cloth that he came to realize decelerates a fall more effectively.[5] A now-famous depiction of a parachute that he dubbed Homo Volans (Flying Man), showing a man parachuting from a tower, presumably St Mark's Campanile in Venice, appeared in his book on mechanics, Machinae Novae ("New Machines", published in 1615 or 1616), alongside a number of other devices and technical concepts.[10]

It was once widely believed that in 1617, Veranzio, then aged 65 and seriously ill, implemented his design and tested the parachute by jumping from St Mark's Campanile,[11] from a bridge nearby,[12] or from St Martin's Cathedral in Bratislava.[13] Various publications incorrectly claimed the event was documented some thirty years later by John Wilkins, one of the founders of, and secretary of, the Royal Society in London, in his book Mathematical Magick or, the Wonders that may be Performed by Mechanical Geometry, published in London in 1648.[12] However, Wilkins wrote about flying, not parachutes, and does not mention Veranzio, a parachute jump, or any event in 1617. Doubts about this test, which include a lack of written evidence, suggest it never occurred, and was instead a misreading of historical notes.[14]

18th and 19th centuries

 
Louis-Sébastien Lenormand jumps from the tower of the Montpellier observatory, 1783. Illustration from the late 19th century.
 
The first use of a frameless parachute, by André Garnerin in 1797
 
Schematic depiction of Garnerin's parachute, from an early nineteenth-century illustration.

The modern parachute was invented in the late 18th century by Louis-Sébastien Lenormand in France, who made the first recorded public jump in 1783. Lenormand also sketched his device beforehand.

Two years later, in 1785, Lenormand coined the word "parachute" by hybridizing an Italian prefix para, an imperative form of parare = to avert, defend, resist, guard, shield or shroud, from paro = to parry, and chute, the French word for fall, to describe the aeronautical device's real function.

Also in 1785, Jean-Pierre Blanchard demonstrated it as a means of safely disembarking from a hot-air balloon. While Blanchard's first parachute demonstrations were conducted with a dog as the passenger, he later claimed to have had the opportunity to try it himself in 1793 when his hot air balloon ruptured, and he used a parachute to descend. (This event was not witnessed by others).

On 12 October 1799, Jeanne Geneviève Garnerin ascended in a gondola attached to a balloon. At 900 meters she detached the gondola from the balloon and descended in the gondola by parachute. In doing so, she became the first woman to parachute.[15] She went on to complete many ascents and parachute descents in towns across France and Europe.[16]

Subsequent development of the parachute focused on it becoming more compact. While the early parachutes were made of linen stretched over a wooden frame, in the late 1790s, Blanchard began making parachutes from folded silk, taking advantage of silk's strength and light weight. In 1797, André Garnerin made the first descent of a "frameless" parachute covered in silk.[17] In 1804, Jérôme Lalande introduced a vent in the canopy to eliminate violent oscillations.[17] In 1887, Park Van Tassel and Thomas Scott Baldwin invented a parachute in San Francisco, California, with Baldwin making the first successful parachute jump in the western United States.[18]

Eve of World War I

 
Picture published in the Dutch magazine De Prins der Geïllustreerde Bladen (18 February 1911).[19]
 
Gleb Kotelnikov and his invention, the knapsack parachute

In 1907 Charles Broadwick demonstrated two key advances in the parachute he used to jump from hot air balloons at fairs: he folded his parachute into a backpack, and the parachute was pulled from the pack by a static line attached to the balloon. When Broadwick jumped from the balloon, the static line became taut, pulled the parachute from the pack, and then snapped.[20]

In 1911 a successful test took place with a dummy at the Eiffel Tower in Paris. The puppet's weight was 75 kg (165 lb); the parachute's weight was 21 kg (46 lb). The cables between the puppet and the parachute were 9 m (30 ft) long.[19] On February 4, 1912, Franz Reichelt jumped to his death from the tower during initial testing of his wearable parachute.

Also in 1911, Grant Morton made the first parachute jump from an airplane, a Wright Model B piloted by Phil Parmalee, at Venice Beach, California. Morton's device was of the "throw-out" type where he held the parachute in his arms as he left the aircraft. In the same year (1911), Russian Gleb Kotelnikov invented the first knapsack parachute,[21] although Hermann Lattemann and his wife Käthe Paulus had been jumping with bagged parachutes in the last decade of the 19th century.

 
Albert Berry collapses his parachute on Kinloch Field at Jefferson Barracks, Missouri, after his jump on 1 March 1912.

In 1912, on a road near Tsarskoye Selo, years before it became part of St. Petersburg, Kotelnikov successfully demonstrated the braking effects of a parachute by accelerating a Russo-Balt automobile to its top speed and then opening a parachute attached to the back seat, thus also inventing the drogue parachute.[21]

On 1 March 1912, U.S. Army Captain Albert Berry made the first (attached-type) parachute jump in the United States from a fixed-wing aircraft, a Benoist pusher, while flying above Jefferson Barracks, St. Louis, Missouri. The jump utilized a parachute stored or housed in a cone-shaped casing under the airplane and attached to a harness on the jumper's body.[22]

 
A picture of Štefan Banič's design

Štefan Banič patented an umbrella-like design in 1914,[23] and sold (or donated) the patent to the United States military, which later modified his design, resulting in the first military parachute.[24][25] Banič had been the first person to patent the parachute,[26] and his design was the first to properly function in the 20th century.[26][clarification needed]

On June 21, 1913, Georgia Broadwick became the first woman to parachute-jump from a moving aircraft, doing so over Los Angeles, California.[20] In 1914, while doing demonstrations for the U.S. Army, Broadwick deployed her chute manually, thus becoming the first person to jump free-fall.

World War I

 
Kite balloon observers preparing to descend by parachute.

The first military use of the parachute was by artillery observers on tethered observation balloons in World War I. These were tempting targets for enemy fighter aircraft, though difficult to destroy, due to their heavy anti-aircraft defenses. Because it was difficult to escape from them, and dangerous when on fire due to their hydrogen inflation, observers would abandon them and descend by parachute as soon as enemy aircraft were seen. The ground crew would then attempt to retrieve and deflate the balloon as quickly as possible. The main part of the parachute was in a bag suspended from the balloon with the pilot wearing only a simple waist harness attached to the main parachute. When the balloon crew jumped the main part of the parachute was pulled from the bag by the crew's waist harness, first the shroud lines, followed by the main canopy. This type of parachute was first adopted on a large scale for their observation balloon crews by the Germans, and then later by the British and French. While this type of unit worked well from balloons, it had mixed results when used on fixed-wing aircraft by the Germans, where the bag was stored in a compartment directly behind the pilot. In many instances where it did not work the shroud lines became entangled with the spinning aircraft. Although this type of parachute saved a number of famous German fighter pilots, including Hermann Göring,[27] no parachutes were issued to the crews of Allied "heavier-than-air" aircraft. It has been claimed that the reason was to avoid pilots jumping from the plane when hit rather than trying to save the aircraft, but Air Vice Marshall Arthur Gould Lee, himself a pilot during the war, examined the British War Office files after the war and found no evidence of such claim.[28]

Airplane cockpits at that time also were not large enough to accommodate a pilot and a parachute, since a seat that would fit a pilot wearing a parachute would be too large for a pilot not wearing one. This is why the German type was stowed in the fuselage, rather than being of the "backpack" type. Weight was – at the very beginning – also a consideration since planes had limited load capacity. Carrying a parachute impeded performance and reduced the useful offensive and fuel load.

In the UK, Everard Calthrop, a railway engineer and breeder of Arab horses, invented and marketed through his Aerial Patents Company a "British Parachute" and the "Guardian Angel" parachute. As part of an investigation into Calthrop's design, on 13 January 1917, test pilot Clive Franklyn Collett successfully jumped from a Royal Aircraft Factory BE.2c flying over Orford Ness Experimental Station at 180 metres (590 ft).[29][30] He repeated the experiment several days later.

Following on from Collett, balloon officer Thomas Orde-Lees, known as the "Mad Major", successfully jumped from Tower Bridge in London,[31][32] which led to the balloonists of the Royal Flying Corps using parachutes, though they were issued for use in aircraft.

In 1911, Solomon Lee Van Meter, Jr. of Lexington, Kentucky, submitted an application for, and in July 1916 received, a patent for a backpack style parachute – the Aviatory Life Buoy.[33] His self-contained device featured a revolutionary quick-release mechanism – the ripcord – that allowed a falling aviator to expand the canopy only when safely away from the disabled aircraft.[34]

Otto Heinecke, a German airship ground crewman, designed a parachute which the German air service introduced in 1918, becoming the world's first air service to introduce a standard parachute. Schroeder company of Berlin manufactured Heinecke's design.[30] The first successful use of this parachute was by Leutnant Helmut Steinbrecher of Jagdstaffel 46, who bailed on 27 June 1918 from his stricken fighter airplane to become the first pilot in history to successfully do so.[30] Although many pilots were saved by the Heinecke design, their efficacy was relatively poor. Out of the first 70 German airmen to bail out, around a third died,[35] These fatalities were mostly due to the chute or ripcord becoming entangled in the airframe of their spinning aircraft or because of harness failure, a problem fixed in later versions.[35]

The French, British, American and Italian air services later based their first parachute designs on the Heinecke parachute to varying extents.[36]

In the UK, Sir Frank Mears, who was serving as a Major in the Royal Flying Corps in France (Kite Balloon section), registered a patent in July 1918 for a parachute with a quick release buckle, known as the "Mears parachute", which was in common use from then onwards.[37]

Post-World War I

 
Ben Turner making a parachute jump from a plane at Camden, Sydney, 14 August 1938.

The experience with parachutes during the war highlighted the need to develop a design that could be reliably used to exit a disabled airplane. For instance, tethered parachutes did not work well when the aircraft was spinning. After the war, Major Edward L. Hoffman of the United States Army led an effort to develop an improved parachute by bringing together the best elements of multiple parachute designs. Participants in the effort included Leslie Irvin and James Floyd Smith. The team eventually created the Airplane Parachute Type-A. This incorporated three key elements:

  • storing the parachute in a soft pack worn on the back, as demonstrated by Charles Broadwick in 1906;
  • a ripcord for manually deploying the parachute at a safe distance from the airplane, from a design by Albert Leo Stevens; and
  • a pilot chute that draws the main canopy from the pack.

In 1919, Irvin successfully tested the parachute by jumping from an airplane. The Type-A parachute was put into production and over time saved a number of lives.[20] The effort was recognized by the awarding of the Robert J. Collier Trophy to Major Edward L. Hoffman in 1926.[38]

Irvin became the first person to make a premeditated free-fall parachute jump from an airplane. An early brochure of the Irvin Air Chute Company credits William O'Connor as having become, on 24 August 1920, at McCook Field near Dayton, Ohio, the first person to be saved by an Irvin parachute.[39] Test pilot Lt. Harold R. Harris made another life-saving jump at McCook Field on 20 October 1922. Shortly after Harris' jump, two Dayton newspaper reporters suggested the creation of the Caterpillar Club for successful parachute jumps from disabled aircraft.

Beginning with Italy in 1927, several countries experimented with using parachutes to drop soldiers behind enemy lines. The regular Soviet Airborne Troops were established as early as 1931 after a number of experimental military mass jumps starting from 2 August 1930.[21] Earlier the same year, the first Soviet mass jumps led to the development of the parachuting sport in the Soviet Union.[21] By the time of World War II, large airborne forces were trained and used in surprise attacks, as in the battles for Fort Eben-Emael and The Hague, the first large-scale, opposed landings of paratroopers in military history, by the Germans.[40] This was followed later in the war by airborne assaults on a larger scale, such as the Battle of Crete and Operation Market Garden, the latter being the largest airborne military operation ever.[41] Aircraft crew were routinely equipped with parachutes for emergencies as well.[citation needed]

In 1937, drag chutes were used in aviation for the first time, by Soviet airplanes in the Arctic that were providing support for the polar expeditions of the era, such as the first drifting ice station, North Pole-1. The drag chute allowed airplanes to land safely on smaller ice floes.[21]

Most parachutes were made of silk until World War II cut off supplies from Japan. After Adeline Gray made the first jump using a nylon parachute in June 1942, the industry switched to nylon.[42]

Types

Today's modern parachutes are classified into two categories – ascending and descending canopies.[citation needed] All ascending canopies refer to paragliders, built specifically to ascend and stay aloft as long as possible. Other parachutes, including ram-air non-elliptical, are classified as descending canopies by manufacturers.

Some modern parachutes are classified as semi-rigid wings, which are maneuverable and can make a controlled descent to collapse on impact with the ground.

Round

 
An American paratrooper using an MC1-1C series "round" parachute.

Round parachutes are purely a drag device (that is, unlike the ram-air types, they provide no lift) and are used in military, emergency and cargo applications (e.g. airdrops). Most have large dome-shaped canopies made from a single layer of triangular cloth gores. Some skydivers call them "jellyfish 'chutes" because of the resemblance to the marine organisms. Modern sports parachutists rarely use this type. The first round parachutes were simple, flat circulars. These early parachutes suffered from instability caused by oscillations. A hole in the apex helped to vent some air and reduce the oscillations. Many military applications adopted conical, i.e., cone-shaped, or parabolic (a flat circular canopy with an extended skirt) shapes, such as the United States Army T-10 static-line parachute. A round parachute with no holes in it is more prone to oscillate and is not considered to be steerable. Some parachutes have inverted dome-shaped canopies. These are primarily used for dropping non-human payloads due to their faster rate of descent.

Forward speed (5–13  km/h) and steering can be achieved by cuts in various sections (gores) across the back, or by cutting four lines in the back, thereby modifying the canopy shape to allow air to escape from the back of the canopy, providing limited forward speed. Other modifications sometimes used are cuts in various gores to cause some of the skirt to bow out. Turning is accomplished by forming the edges of the modifications, giving the parachute more speed from one side of the modification than the other. This gives the jumpers the ability to steer the parachute (such as the United States Army MC series parachutes), enabling them to avoid obstacles and to turn into the wind to minimize horizontal speed at landing.

Cruciform

The unique design characteristics of cruciform parachutes decrease oscillation (its user swinging back and forth) and violent turns during descent. This technology will be used by the United States Army as it replaces its older T-10 parachutes with T-11 parachutes under a program called Advanced Tactical Parachute System (ATPS). The ATPS canopy is a highly modified version of a cross/ cruciform platform and is square in appearance. The ATPS system will reduce the rate of descent by 30 percent from 21 feet per second (6.4 m/s) to 15.75 feet per second (4.80 m/s). The T-11 is designed to have an average rate of descent 14% slower than the T-10D, thus resulting in lower landing injury rates for jumpers. The decline in the rate of descent will reduce the impact energy by almost 25% to lessen the potential for injury.

Pull-down apex

 
1970s 'high performance' pull-down apex canopy, as seen in the 'round' (or really, elliptical) parachute's centre.
 
1970s 'round' elliptical showing 4 controllable turn slots, plus another, small side vent and one of 5 rear vents.

A variation on the round parachute is the pull-down apex parachute, invented by a Frenchman named Pierre-Marcel Lemoigne.[43][44][45] The first widely used canopy of this type was called the Para-Commander (made by the Pioneer Parachute Co.), although there are many other canopies with a pull-down apex produced in the years thereafter - these had minor differences in attempts to make a higher performance rig, such as different venting configurations. They are all considered 'round' parachutes, but with suspension lines to the canopy apex that apply load there and pull the apex closer to the load, distorting the round shape into a somewhat flattened or lenticular shape when viewed from the side. And while called rounds, they generally have an elliptical shape when viewed from above or below, with the sides bulging out more than the for'd-and-aft dimension, the chord (see the lower photo to the right and you likely can ascertain the difference).

Due to their lenticular shape and appropriate venting, they have a considerably faster forward speed than, say, a modified military canopy. And due to controllable rear-facing vents in the canopy's sides, they also have much snappier turning capabilities, though they are decidedly low-performance compared to today's ram-air rigs. From about the mid-1960s to the late-1970s, this was the most popular parachute design type for sport parachuting (prior to this period, modified military 'rounds' were generally used and after, ram-air 'squares' became common). Note that the use of the word elliptical for these 'round' parachutes is somewhat dated and may cause slight confusion, since some 'squares' (i.e. ram-airs) are elliptical nowadays, too.

Annular

Some designs with a pull-down apex have the fabric removed from the apex to open a hole through which air can exit (most, if not all, round canopies have at least a small hole to allow easier tie-down for packing - these aren't considered annular), giving the canopy an annular geometry. This hole can be very pronounced in some designs, taking up more 'space' than the parachute. They also have decreased horizontal drag due to their flatter shape and, when combined with rear-facing vents, can have considerable forward speed. Truly annular designs - with a hole large enough that the canopy can be classified as ring-shaped - are uncommon.

Rogallo wing

Sport parachuting has experimented with the Rogallo wing, among other shapes and forms. These were usually an attempt to increase the forward speed and reduce the landing speed offered by the other options at the time. The ram-air parachute's development and the subsequent introduction of the sail slider to slow deployment reduced the level of experimentation in the sport parachuting community. The parachutes are also hard to build.

Ribbon and ring

 
The Mars Science Laboratory capsule, carrying the Mars rover Curiosity, descending under its supersonic disk-gap-band[46] parachute.

Ribbon and ring parachutes have similarities to annular designs. They are frequently designed to deploy at supersonic speeds. A conventional parachute would instantly burst upon opening and be shredded at such speeds. Ribbon parachutes have a ring-shaped canopy, often with a large hole in the centre to release the pressure. Sometimes the ring is broken into ribbons connected by ropes to leak air even more. These large leaks lower the stress on the parachute so it does not burst or shred when it opens. Ribbon parachutes made of Kevlar are used on nuclear bombs, such as the B61 and B83.[47]

Ram-air

The principle of the Ram-Air Multicell Airfoil was conceived in 1963 by Canadian Domina "Dom" C. Jalbert, but serious problems had to be solved before a ram-air canopy could be marketed to the sport parachuting community.[48] Ram-air parafoils are steerable (as are most canopies used for sport parachuting), and have two layers of fabric—top and bottom—connected by airfoil-shaped fabric ribs to form "cells". The cells fill with higher-pressure air from vents that face forward on the leading edge of the airfoil. The fabric is shaped and the parachute lines trimmed under load such that the ballooning fabric inflates into an airfoil shape. This airfoil is sometimes maintained by use of fabric one-way valves called airlocks. "The first jump of this canopy (a Jalbert Parafoil) was made[when?] by International Skydiving Hall of Fame member Paul 'Pop' Poppenhager."[49]

Varieties

 
A United States Navy Parachute Team "Leap Frogs" jumper landing a "square" ram-air parachute.

Personal ram-air parachutes are loosely divided into two varieties – rectangular or tapered – commonly called "squares" or "ellipticals", respectively. Medium-performance canopies (reserve-, BASE-, canopy formation-, and accuracy-type) are usually rectangular. High-performance, ram-air parachutes have a slightly tapered shape to their leading and/or trailing edges when viewed in plan form, and are known as ellipticals. Sometimes all the taper is on the leading edge (front), and sometimes in the trailing edge (tail).

Ellipticals are usually used only by sport parachutists. They often have smaller, more numerous fabric cells and are shallower in profile. Their canopies can be anywhere from slightly elliptical to highly elliptical, indicating the amount of taper in the canopy design, which is often an indicator of the responsiveness of the canopy to control input for a given wing loading, and of the level of experience required to pilot the canopy safely.[citation needed]

The rectangular parachute designs tend to look like square, inflatable air mattresses with open front ends. They are generally safer to operate because they are less prone to dive rapidly with relatively small control inputs, they are usually flown with lower wing loadings per square foot of area, and they glide more slowly. They typically have a lower glide ratio.

Wing loading of parachutes is measured similarly to that of aircraft, comparing exit weight to area of parachute fabric. Typical wing loading for students, accuracy competitors, and BASE jumpers is less than 5  kg per square meter – often 0.3 kilograms per square meter or less. Most student skydivers fly with wing loading below 5  kg per square meter. Most sport jumpers fly with wing loading between 5 and 7  kg per square meter, but many interested in performance landings exceed this wing loading. Professional canopy pilots compete with wing loading of 10 to over 15 kilograms per square meter. While ram-air parachutes with wing loading higher than 20 kilograms per square meter have been landed, this is strictly the realm of professional test jumpers.

Smaller parachutes tend to fly faster for the same load, and ellipticals respond faster to control input. Therefore, small, elliptical designs are often chosen by experienced canopy pilots for the thrilling flying they provide. Flying a fast elliptical requires much more skill and experience. Fast ellipticals are also considerably more dangerous to land. With high-performance elliptical canopies, nuisance malfunctions can be much more serious than with a square design, and may quickly escalate into emergencies. Flying highly loaded, elliptical canopies is a major contributing factor in many skydiving accidents, although advanced training programs are helping to reduce this danger.[citation needed]

High-speed, cross-braced parachutes, such as the Velocity, VX, XAOS, and Sensei, have given birth to a new branch of sport parachuting called "swooping." A race course is set up in the landing area for expert pilots to measure the distance they are able to fly past the 1.5-metre (4.9 ft) tall entry gate. Current world records exceed 180 metres (590 ft).

Aspect ratio is another way to measure ram-air parachutes. Aspect ratios of parachutes are measured the same way as aircraft wings, by comparing span with chord. Low aspect ratio parachutes, i.e., span 1.8 times the chord, are now limited to precision landing competitions. Popular precision landing parachutes include Jalbert (now NAA) Para-Foils and John Eiff's series of Challenger Classics. While low aspect ratio parachutes tend to be extremely stable, with gentle stall characteristics, they suffer from steep glide ratios and a small tolerance, or "sweet spot", for timing the landing flare.

Because of their predictable opening characteristics, parachutes with a medium aspect ratio around 2.1 are widely used for reserves, BASE, and canopy formation competition. Most medium aspect ratio parachutes have seven cells.

High aspect ratio parachutes have the flattest glide and the largest tolerance for timing the landing flare, but the least predictable openings. An aspect ratio of 2.7 is about the upper limit for parachutes. High aspect ratio canopies typically have nine or more cells. All reserve ram-air parachutes are of the square variety, because of the greater reliability, and the less-demanding handling characteristics.

Paragliders

 
Paragliding at Cochrane hill, AB, Canada, 1991. An APCO Starlite 26.
 
Apco Starlite 26 paraglider launch inflating cells by pulling up top risers
 
Paragliding over Christ the Redeemer statue in Rio de Janeiro, Brazil, 2015

Paragliders - virtually all of which use ram-air canopies - are more akin to today's sport parachutes than, say, parachutes of the mid-1970s and earlier. Technically, they are ascending parachutes, though that term is not used in the paragliding community, and they have the same basic airfoil design of today's 'square' or 'elliptical' sports parachuting canopy, but generally have more sectioned cells, higher aspect ratio and a lower profile. Cell count varies widely, typically from the high 20s to the 70s, while aspect ratio can be 8 or more, though aspect ratio (projected) for such a canopy might be down at 6 or so - both outrageously higher than a representative skydiver's parachute. The wing span is typically so great that it's far closer to a very elongated rectangle or ellipse than a square and that term is rarely used by paraglider pilots. Similarly, span might be ~15 m with span (projected) at 12 m. Canopies are still attached to the harness by suspension lines and (four or six) risers, but they use lockable carabiners as the final connection to the harness. Modern high-performance paragliders often have the cell openings closer to the bottom of the leading edge and the end cells might appear to be closed, both for aerodynamic streamlining (these apparently closed end cells are vented and inflated from the adjacent cells, which have venting in the cell walls).

The main difference is in paragliders' usage, typically longer flights that can last all day and hundreds of kilometres in some cases. The harness is also quite different from a parachuting harness and can vary dramatically from ones for the beginner (which might be just a bench seat with nylon material and webbing to ensure the pilot is secure, no matter the position), to seatboardless ones for high altitude and cross-country flights (these are usually full-body cocoon- or hammock-like devices to include the outstretched legs - called speedbags, aerocones, etc. - to ensure aerodynamic efficiency and warmth). In many designs, there will be protection for the back and shoulder areas built-in, and support for a reserve canopy, water container, etc. Some even have windshields.

Because paragliders are made for foot- or ski-launch, they aren't suitable for terminal velocity openings and there is no slider to slow down an opening (paraglider pilots typically start with an open but uninflated canopy). To launch a paraglider, one typically spreads out the canopy on the ground to closely approximate an open canopy with the suspension lines having little slack and less tangle - see more in Paragliding. Depending on the wind, the pilot has three basic options: 1) a running forward launch (typically in no wind or slight wind), 2) a standing launch (in ideal winds) and 3) a reverse launch (in higher winds). In ideal winds, the pilot pulls on the top risers to have the wind inflate the cells and simply eases the brakes down, much like an aircraft's flaps, and takes off. Or if there is no wind, the pilot runs or skis to make it inflate, typically at the edge of a cliff or hill. Once the canopy is above one's head, it's a gentle pull down on both toggles in ideal winds, a tow (say, behind a vehicle) on flat ground, a continued run down the hill, etc. Ground handling in a variety of winds is important and there are even canopies made strictly for that practice, to save on wear and tear of more expensive canopies designed for say, XC, competition or just recreational flying.

General characteristics

Main parachutes used by skydivers today are designed to open softly. Overly rapid deployment was an early problem with ram-air designs. The primary innovation that slows the deployment of a ram-air canopy is the slider; a small rectangular piece of fabric with a grommet near each corner. Four collections of lines go through the grommets to the risers (risers are strips of webbing joining the harness and the rigging lines of a parachute). During deployment, the slider slides down from the canopy to just above the risers. The slider is slowed by air resistance as it descends and reduces the rate at which the lines can spread. This reduces the speed at which the canopy can open and inflate.

At the same time, the overall design of a parachute still has a significant influence on the deployment speed. Modern sport parachutes' deployment speeds vary considerably. Most modern parachutes open comfortably, but individual skydivers may prefer harsher deployment.

The deployment process is inherently chaotic. Rapid deployments can still occur even with well-behaved canopies. On rare occasions, deployment can even be so rapid that the jumper suffers bruising, injury, or death. Reducing the amount of fabric decreases the air resistance. This can be done by making the slider smaller, inserting a mesh panel, or cutting a hole in the slider.

Deployment

 
Animation of 3-ring release system used by a skydiver to cut away the main parachute. It utilizes a mechanical advantage of 200 to 1.

Reserve parachutes usually have a ripcord deployment system, which was first designed by Theodore Moscicki, but most modern main parachutes used by sports parachutists use a form of hand-deployed pilot chute. A ripcord system pulls a closing pin (sometimes multiple pins), which releases a spring-loaded pilot chute, and opens the container; the pilot chute is then propelled into the air stream by its spring, then uses the force generated by passing air to extract a deployment bag containing the parachute canopy, to which it is attached via a bridle. A hand-deployed pilot chute, once thrown into the air stream, pulls a closing pin on the pilot chute bridle to open the container, then the same force extracts the deployment bag. There are variations on hand-deployed pilot chutes, but the system described is the more common throw-out system.

Only the hand-deployed pilot chute may be collapsed automatically after deployment—by a kill line reducing the in-flight drag of the pilot chute on the main canopy. Reserves, on the other hand, do not retain their pilot chutes after deployment. The reserve deployment bag and pilot chute are not connected to the canopy in a reserve system. This is known as a free-bag configuration, and the components are sometimes not recovered after a reserve deployment.

Occasionally, a pilot chute does not generate enough force either to pull the pin or to extract the bag. Causes may be that the pilot chute is caught in the turbulent wake of the jumper (the "burble"), the closing loop holding the pin is too tight, or the pilot chute is generating insufficient force. This effect is known as "pilot chute hesitation," and, if it does not clear, it can lead to a total malfunction, requiring reserve deployment.

Paratroopers' main parachutes are usually deployed by static lines that release the parachute, yet retain the deployment bag that contains the parachute—without relying on a pilot chute for deployment. In this configuration, the deployment bag is known as a direct-bag system, in which the deployment is rapid, consistent, and reliable.

Safety

 
RAF Typhoon using a drogue parachute for braking after landing.

A parachute is carefully folded, or "packed" to ensure that it will open reliably. If a parachute is not packed properly it can result in a malfunction where the main parachute fails to deploy correctly or fully. In the United States and many developed countries, emergency and reserve parachutes are packed by "riggers" who must be trained and certified according to legal standards. Sport skydivers are always trained to pack their own primary "main" parachutes.

Exact numbers are difficult to estimate because parachute design, maintenance, loading, packing technique and operator experience all have a significant impact on malfunction rates. Approximately one in a thousand sport main parachute openings malfunctions, requiring the use of the reserve parachute, although some skydivers have many thousands of jumps and never needed to use their reserve parachute.

Reserve parachutes are packed and deployed somewhat differently. They are also designed more conservatively, favouring reliability over responsiveness and are built and tested to more exacting standards, making them more reliable than main parachutes. Regulated inspection intervals, coupled with significantly less use contributes to reliability as wear on some components can adversely affect reliability. The safety advantage of a reserve parachute comes from the small probability of a main malfunction being multiplied by the even smaller probability of a reserve malfunction. This yields an even smaller probability of a double malfunction, although there is also a small possibility of a malfunctioning main parachute not being able to be released and thus interfering with the reserve parachute. In the United States, the 2017 average fatality rate is recorded to be 1 in 133,571 jumps.[50]

Injuries and fatalities in sport skydiving are possible even under a fully functional main parachute, such as may occur if the skydiver makes an error in judgment while flying the canopy which results in a high-speed impact either with the ground or with a hazard on the ground, which might otherwise have been avoided, or results in collision with another skydiver under canopy.

Malfunctions

 
The Apollo 15 spacecraft landed safely despite a parachute line failure in 1971.

Below are listed the malfunctions specific to round parachutes:

  • A "Mae West" or "blown periphery" is a type of round parachute malfunction that contorts the shape of the canopy into the outward appearance of a large brassiere, named after the generous proportions of the late actress Mae West. The column of nylon fabric, buffeted by the wind, rapidly heats from friction and opposite sides of the canopy can fuse together in a narrow region, removing any chance of it opening fully.
  • A "streamer" is the main chute which becomes entangled in its lines and fails to deploy, taking the shape of a paper streamer. The parachutist cuts it away to provide space and clean air for deploying the reserve.[51]
  • An "inversion" occurs when one skirt of the canopy blows between the suspension lines on the opposite side of the parachute and then catches air. That portion then forms a secondary lobe with the canopy inverted. The secondary lobe grows until the canopy turns completely inside out.
  • A "barber's pole" describes having a tangle of lines behind the jumper's head, who cuts away the main and opens his reserve.[51]
  • The "horseshoe" is an out-of-sequence deployment, when the parachute lines and bag are released before the bag drogue and bridle. This can cause the lines to become tangled or a situation where the parachute drogue is not released from the container.[51]
  • "Jumper-In-Tow" involves a static line that does not disconnect, resulting in a jumper being towed behind the aircraft.[51]

Records

 
A jumper in free-fall in Venezuela with his parachute on his back

On August 16, 1960, Joseph Kittinger, in the Excelsior III test jump, set the previous world record for the highest parachute jump. He jumped from a balloon at an altitude of 102,800 feet (31,333 m) (which was also a piloted balloon altitude record at the time). A small stabilizer chute deployed successfully, and Kittinger fell for 4 minutes and 36 seconds,[52] also setting a still-standing world record for the longest parachute free-fall, if falling with a stabilizer chute is counted as free-fall. At an altitude of 17,500 feet (5,300 m), Kittinger opened his main chute and landed safely in the New Mexico desert. The whole descent took 13 minutes and 45 seconds.[53] During the descent, Kittinger experienced temperatures as low as −94 °F (−70 °C). In the free-fall stage, he reached a top speed of 614 mph (988 km/h or 274 m/s), or Mach 0.8.[54]

According to Guinness World Records, Yevgeni Andreyev, a colonel in the Soviet Air Force, held the official FAI record for the longest free-fall parachute jump (without drogue chute) after falling for 24,500 m (80,380 ft) from an altitude of 25,457 m (83,523 ft) near the city of Saratov, Russia on November 1, 1962, until broken by Felix Baumgartner in 2012.

Felix Baumgartner broke Joseph Kittinger's record on October 14, 2012, with a jump from an altitude of 127,852 feet (38,969.3 m) and reaching speeds up to 833.9 mph (1,342.0 km/h or 372.8 m/s), or nearly Mach 1.1. Kittinger was an advisor for Baumgartner's jump.[55]

Alan Eustace made a jump from the stratosphere on October 24, 2014, from an altitude of 135,889.108 feet (41,419 m). However, because Eustace's jump involved a drogue parachute while Baumgartner's did not, their vertical speed and free fall distance records remain in different record categories.

Uses

In addition to the use of a parachute to slow the descent of a person or object, a drogue parachute is used to aid horizontal deceleration of a land or air vehicle, including fixed-wing aircraft and drag racers, provide stability, as to assist certain types of light aircraft in distress,[56][57] tandem free-fall; and as a pilot triggering deployment of a larger parachute.

Parachutes are also used as play equipment.[58]

See also

References

  1. ^ Moolman, Valerie (1980). The Road to Kitty Hawk. New York: Time-Life Books. pp. 19–20. ISBN 9780809432608.
  2. ^ a b White 1968, p. 466
  3. ^ a b White 1968, pp. 462f.
  4. ^ "Leonardo, the Man Who Saved Science ~ Did Leonardo Really Invent the Parachute? | Secrets of the Dead | PBS". PBS. 4 April 2017.
  5. ^ a b c d White 1968, p. 465
  6. ^ White 1968, pp. 465f.
  7. ^ van den Broek, Marc (2019). Leonardo da Vinci Spirits of Invention. A Search for Traces. Hamburg: A.TE.M. ISBN 978-3-00-063700-1.
  8. ^ "Da Vinci's Parachute Flies". BBC News. 2000.
  9. ^ . Fox News. 2008. Archived from the original on 21 April 2010.
  10. ^ Miller, Francis Trevelyan (1930). The world in the air: the story of flying in pictures. G.P. Putnam's Sons. pp. 101–106 – via Google Books.
  11. ^ Rathbone, Alfred Day (1943). He's in the paratroops now. New York: Robert M. McBride & Company. Retrieved 5 December 2022 – via University of California, Internet Archive.
  12. ^ a b Bogdanski, René (2007). The Croatian Language by Example. GRIN Verlag. p. 8. ISBN 9783638740869 – via Google Books. [As an example for Diachronic analysis:] One of his most important inventions, is, without doubt, the parachute, which he experimented and tested on himself, by jumping off a bridge in Venice. As documented by the English bishop John Wilkins (1614–1672) 30 years later, in his book Mathematical Magic published in London in 1648.
  13. ^ . 321chutelibre (in French). Archived from the original on 20 January 2012.
  14. ^ . Aero.com. Archived from the original on 17 November 2015. Like his countryman's concept, Veranzio's seems to have remained an idea only. Though his idea was greatly publicized, no evidence has been found that there ever was a homo volans of his or any other time who tested and proved Veranzio's plan.
  15. ^ Gilles-Antoine Langlois (1991). Folies, tivolis et attractions: les premiers parcs de loisirs parisiens (in French). Délégation à l'action artistique de la ville de Paris. p. 144. ISBN 9782905118356.
  16. ^ Duhem, Jules (1943). Sorlot, Fernand (ed.). Histoire des idées aéronautiques avant Montgolfier (in French). Nouvelles Editions Latines. p. 263. Retrieved 25 July 2012.
  17. ^ a b Soden, Garrett (2005). Defying Gravity: Land Divers, Roller Coasters, Gravity Bums, and the Human Obsession with Falling. W. W. Norton & Company. pp. 21–22. ISBN 978-0-393-32656-7 – via Google Books.
  18. ^ Fogel, Gary B. (2021). . University of New Mexico Press. pp. 38–43. ISBN 978-0-8263-6282-7. Archived from the original on 22 November 2021. Retrieved 5 December 2022.
  19. ^ a b De Prins der Geillustreerde Bladen, 18 February 1911, pp. 88-89.
  20. ^ a b c Ritter, Lisa (April–May 2010). "Pack Man: Charles Broadwick Invented a New Way of Falling". Air & Space. Vol. 25, no. 1. pp. 68–72. Retrieved 1 March 2013.
  21. ^ a b c d e "Parachuting". Divo: The Russian Book of records and achievements (in Russian).
  22. ^ Reichhardt, Tony (29 February 2012). "Berry's Leap". The Daily Planet. Air & Space/Smithsonian. from the original on 26 April 2012.
  23. ^ U.S. patent 1,108,484
  24. ^ Štefan Banič, Konštruktér, vynálezca, Matematický ústav, Slovenská akadémia vied, obituary. Retrieved 21 October 2010.
  25. ^ "Banic: The inventor of the parachute". osobnosti.sk (in Slovak).
  26. ^ a b "Inventions That Shook The World: 1910s". dcmp.org. Retrieved 2018-03-05.
  27. ^ May 1931, Popular Mechanics photo of observation balloon gondola with external bag parachutes used by British Royal Navy
  28. ^ Steven T., Tom (2019). First to Fight: An American Volunteer in the French Foreign Legion and the Lafayette Escadrille in World War I. Rowman & Littlefield. p. 105. ISBN 9780811768108. Retrieved 8 April 2023.
  29. ^ Yarwood, Vaughan (January 2022). "Leap of Faith". New Zealand Geographic. Vol. 173.
  30. ^ a b c Mackersey, Ian (2012). No Empty Chairs: The Short and Heroic Lives of the Young Aviators Who Fought and Died in the First World War (Paperback). London: Hachette UK. ISBN 9780753828137.
  31. ^ (PDF). The Journal of the New Zealand Antarctic Society. 23 (4): 68. 2005. Archived from the original (PDF) on 21 January 2016.
  32. ^ "Royal Air Force Historical Society Journal, #37", 2006, Page 28
  33. ^ Aviatory Life Buoy, U.S. patent 1,192,479, July 25, 1916, awarded to inventor Solomon Lee Van Meter, Jr.
  34. ^ . Kentucky Educational Television. 2010. Archived from the original on 6 July 2010. Retrieved 5 December 2022.
  35. ^ a b Guttman, Jon (May 2012). "Heinecke Parachute: A Leap of Faith for WWI German Airmen". Military History Magazine. p. 23.
  36. ^ Mahncke, J O E O (December 2000). "Early Parachutes, An evaluation of the use of parachutes, with special emphasis on the Royal Flying Corps and the German Lufstreitkräfte, until 1918". South African Military History Journal. 11 (6).
  37. ^ Archives, The National. "The Discovery Service".
  38. ^ "Collier 1920–1929 Recipients". National Aeronautic Association.
  39. ^ Cooper, Ralph S. . Archived from the original on 30 August 2003. Retrieved 22 October 2013 – via Earthlink.net.
  40. ^ Dr L. de Jong, 'Het Koninkrijk der Nederlanden in de Tweede Wereldoorlog', (Dutch language) part 3, RIOD, Amsterdam, 1969
  41. ^ Dr L. de Jong, 'Het Koninkrijk der Nederlanden in de Tweede Wereldoorlog', (Dutch language) part 10a-II, RIOD, Amsterdam, 1980
  42. ^ "obit-adeline-gray". www.oxford-historical-society.org. Retrieved 28 March 2021.
  43. ^ Pierre Marcel Lemoigne, U.S. patent 3,228,636 (filed: November 7, 1963; issued: January 11, 1966).
  44. ^ Palau, Jean-Michel (February 20, 2008). "Historique du Parachutisme Ascensionnel Nautique" (in French). Le Parachutisme Ascensionnel Nautique. Retrieved October 22, 2013. Includes photo of Lemoigne.
  45. ^ See also: Theodor W. Knacke, "Technical-historical development of parachutes and their applications since World War I (Technical paper A87-13776 03-03)," 9th Aerodynamic Decelerator and Balloon Technology Conference (Albuquerque, New Mexico; October 7–9, 1986) (New York, N.Y.: American Institute of Aeronautics and Astronautics, 1986), pages 1–10.
  46. ^ Clark, Ian; Tanner, Christopher (2017-06-08). "A historical summary of the design, development, and analysis of the disk-gap-band parachute". 2017 IEEE Aerospace Conference. pp. 1–17. doi:10.1109/AERO.2017.7943854. ISBN 978-1-5090-1613-6. S2CID 40095390 – via IEEE.
  47. ^ Mitcheltree, R; Witkowski, A. (PDF). American Institute of Aeronautics and Astronautics. Archived from the original (PDF) on 2009-07-03.
  48. ^ Ryan, Charles W. (1975). Sport Parachuting. Chicago: Henry Regnery Company. p. 191. ISBN 0-8092-8378-6.
  49. ^ International Skydiving Museum & Hall of Fame. "International Skydiving Hall of Fame Member Domina C. Jalbert". Retrieved 6 June 2020.
  50. ^ "Skydiving Safety". United States Parachute Association. from the original on August 22, 2018. Retrieved November 26, 2018.
  51. ^ a b c d Scott Royce E. "Bo." Jump School at Fort Benning (originally published in a column called DUSTOFF in the July – August 1988 Issue of the Screaming Eagle Magazine) November 30, 2010, at the Wayback Machine
  52. ^ Jeffrey S. Hampton (December 15, 2003). "'Hero of Aviation' speaks about record-setting free fall". The Virginian-Pilot. p. Y1.
  53. ^ Tim Friend (August 18, 1998). "Out of thin air His free fall from 20 miles (32 km) put NASA on firm footing". USA Today. p. 1D.
  54. ^ "Data of the stratospheric balloon launched on 8/16/1960 For EXCELSIOR III". Stratocat.com.ar. September 25, 2013. Retrieved October 22, 2013.
  55. ^ "Faster than the speed of sound: the man who falls to earth". Independent.co.uk. January 25, 2010. Archived from the original on 2022-05-24.
  56. ^ Ballistic recovery systems A U.S. patent 4607814 A, Boris Popov, August 26, 1986
  57. ^ Klesius, Michael (January 2011). "How Things Work: Whole-Airplane Parachute". Air & Space. Retrieved October 22, 2013.
  58. ^ YPO, Multi-Coloured Parachute with 8 Handles - 1.75m(Dia), accessed 1 February 2023

Bibliography

Further reading

  • Mirsky, Steve (March 1, 2019). "Volunteers Jumped with or without a Parachute to Gauge Its Effectiveness". Scientific American. Retrieved December 28, 2021.
  • Pell; Smith, Gordon C. S. (December 20, 2003). "Parachute Use to Prevent Death and Major Trauma Related to Gravitational Challenge: Systematic Review of Randomised Controlled Trials". British Medical Journal. 327 (7429): 1459–1461. doi:10.1136/bmj.327.7429.1459. ISSN 0959-8138. PMC 300808. PMID 14684649.

External links

  • CSPA The Canadian Sport Parachuting Association—The governing body for sport skydiving in Canada
  • Scientific American, June 7, 1913
  • Parachute History
  • Skydiving education
  • USPA The United States Parachute Association—The governing body for sport skydiving in the U.S.
  • The Parachute History Collection at Linda Hall Library July 27, 2011, at the Wayback Machine (text-searchable PDFs)
  • "How Armies Hit the Silk", June 1945, Popular Science, James L. H. Peck – detailed article on parachutes
  • NuméroLa Revue aérienne / directeur Emile Mousset—First female parachutist
  • Everard Calthrop Parachutist - Drop From Tower Bridge Part 1 (1918). Film of a successful parachute jump from Tower Bridge during World War I.

parachute, this, article, about, device, sports, other, activities, involving, parachute, parachuting, other, uses, disambiguation, redirects, here, albums, coldplay, album, frank, iero, patience, album, this, article, lead, section, short, adequately, summari. This article is about the device For sports and other activities involving a parachute see Parachuting For other uses see Parachute disambiguation Parachutes redirects here For the albums see Parachutes Coldplay album and Parachutes Frank Iero and the Patience album This article s lead section may be too short to adequately summarize the key points Please consider expanding the lead to provide an accessible overview of all important aspects of the article August 2021 A parachute is a device used to slow the motion of an object through an atmosphere by creating drag or in a ram air parachute aerodynamic lift A major application is to support people for recreation or as a safety device for aviators who can exit from an aircraft at height and descend safely to earth Paratroopers deploying their parachutes during an exerciseA parachute is usually made of a light strong fabric Early parachutes were made of silk The most common fabric today is nylon A parachute s canopy is typically dome shaped but some are rectangles inverted domes and other shapes A variety of loads are attached to parachutes including people food equipment space capsules and bombs Contents 1 History 1 1 Middle Ages 1 2 Early Renaissance 1 3 18th and 19th centuries 1 4 Eve of World War I 1 5 World War I 1 6 Post World War I 2 Types 2 1 Round 2 2 Cruciform 2 3 Pull down apex 2 4 Annular 2 5 Rogallo wing 2 6 Ribbon and ring 2 7 Ram air 2 7 1 Varieties 2 8 Paragliders 2 8 1 General characteristics 3 Deployment 4 Safety 5 Malfunctions 6 Records 7 Uses 8 See also 9 References 10 Bibliography 11 Further reading 12 External linksHistorySee also Early flying machines History of aviation and History of ballooning Middle Ages In 852 in Cordoba Spain the Moorish man Armen Firman attempted unsuccessfully to fly by jumping from a tower while wearing a large cloak It was recorded that there was enough air in the folds of his cloak to prevent great injury when he reached the ground 1 Early Renaissance nbsp The oldest known depiction of a parachute attributed to Taccola Italy 1470s The earliest evidence for the true parachute dates back to the Renaissance period 2 The oldest parachute design appears in a manuscript from the 1470s attributed to Taccola British Library Add MS 34113 fol 200v showing a free hanging man clutching a crossbar frame attached to a conical canopy 3 4 As a safety measure four straps ran from the ends of the rods to a waist belt Although the surface area of the parachute design appears to be too small to offer effective air resistance and the wooden base frame is superfluous and potentially harmful the basic concept of a working parachute is apparent 5 The design is a marked improvement over another folio 189v which depicts a man trying to break the force of his fall using two long cloth streamers fastened to two bars which he grips with his hands 5 Shortly after a more sophisticated parachute was sketched by the polymath Leonardo da Vinci in his Codex Atlanticus fol 381v dated to c 1485 3 Here the scale of the parachute is in a more favorable proportion to the weight of the jumper A square wooden frame which alters the shape of the parachute from conical to pyramidal held open Leonardo s canopy 5 It is not known whether the Italian inventor was influenced by the earlier design but he may have learned about the idea through the intensive oral communication among artist engineers of the time 6 7 The feasibility of Leonardo s pyramidal design was successfully tested in 2000 by Briton Adrian Nicholas and again in 2008 by the Swiss skydiver Olivier Vietti Teppa 8 9 According to historian of technology Lynn White these conical and pyramidal designs much more elaborate than early artistic jumps with rigid parasols in Asia mark the origin of the parachute as we know it 2 nbsp Fausto Veranzio s parachute design titled Homo Volans Flying Man from his Machinae Novae New Contraptions published in 1615 or 1616 The Croatian polymath and inventor Fausto Veranzio or Faust Vrancic 1551 1617 examined da Vinci s parachute sketch and kept the square frame but replaced the canopy with a bulging sail like piece of cloth that he came to realize decelerates a fall more effectively 5 A now famous depiction of a parachute that he dubbed Homo Volans Flying Man showing a man parachuting from a tower presumably St Mark s Campanile in Venice appeared in his book on mechanics Machinae Novae New Machines published in 1615 or 1616 alongside a number of other devices and technical concepts 10 It was once widely believed that in 1617 Veranzio then aged 65 and seriously ill implemented his design and tested the parachute by jumping from St Mark s Campanile 11 from a bridge nearby 12 or from St Martin s Cathedral in Bratislava 13 Various publications incorrectly claimed the event was documented some thirty years later by John Wilkins one of the founders of and secretary of the Royal Society in London in his book Mathematical Magick or the Wonders that may be Performed by Mechanical Geometry published in London in 1648 12 However Wilkins wrote about flying not parachutes and does not mention Veranzio a parachute jump or any event in 1617 Doubts about this test which include a lack of written evidence suggest it never occurred and was instead a misreading of historical notes 14 18th and 19th centuries This section needs additional citations for verification Please help improve this article by adding citations to reliable sources in this section Unsourced material may be challenged and removed January 2009 Learn how and when to remove this template message nbsp Louis Sebastien Lenormand jumps from the tower of the Montpellier observatory 1783 Illustration from the late 19th century nbsp The first use of a frameless parachute by Andre Garnerin in 1797 nbsp Schematic depiction of Garnerin s parachute from an early nineteenth century illustration The modern parachute was invented in the late 18th century by Louis Sebastien Lenormand in France who made the first recorded public jump in 1783 Lenormand also sketched his device beforehand Two years later in 1785 Lenormand coined the word parachute by hybridizing an Italian prefix para an imperative form of parare to avert defend resist guard shield or shroud from paro to parry and chute the French word for fall to describe the aeronautical device s real function Also in 1785 Jean Pierre Blanchard demonstrated it as a means of safely disembarking from a hot air balloon While Blanchard s first parachute demonstrations were conducted with a dog as the passenger he later claimed to have had the opportunity to try it himself in 1793 when his hot air balloon ruptured and he used a parachute to descend This event was not witnessed by others On 12 October 1799 Jeanne Genevieve Garnerin ascended in a gondola attached to a balloon At 900 meters she detached the gondola from the balloon and descended in the gondola by parachute In doing so she became the first woman to parachute 15 She went on to complete many ascents and parachute descents in towns across France and Europe 16 Subsequent development of the parachute focused on it becoming more compact While the early parachutes were made of linen stretched over a wooden frame in the late 1790s Blanchard began making parachutes from folded silk taking advantage of silk s strength and light weight In 1797 Andre Garnerin made the first descent of a frameless parachute covered in silk 17 In 1804 Jerome Lalande introduced a vent in the canopy to eliminate violent oscillations 17 In 1887 Park Van Tassel and Thomas Scott Baldwin invented a parachute in San Francisco California with Baldwin making the first successful parachute jump in the western United States 18 Eve of World War I nbsp Picture published in the Dutch magazine De Prins der Geillustreerde Bladen 18 February 1911 19 nbsp Gleb Kotelnikov and his invention the knapsack parachuteIn 1907 Charles Broadwick demonstrated two key advances in the parachute he used to jump from hot air balloons at fairs he folded his parachute into a backpack and the parachute was pulled from the pack by a static line attached to the balloon When Broadwick jumped from the balloon the static line became taut pulled the parachute from the pack and then snapped 20 In 1911 a successful test took place with a dummy at the Eiffel Tower in Paris The puppet s weight was 75 kg 165 lb the parachute s weight was 21 kg 46 lb The cables between the puppet and the parachute were 9 m 30 ft long 19 On February 4 1912 Franz Reichelt jumped to his death from the tower during initial testing of his wearable parachute Also in 1911 Grant Morton made the first parachute jump from an airplane a Wright Model B piloted by Phil Parmalee at Venice Beach California Morton s device was of the throw out type where he held the parachute in his arms as he left the aircraft In the same year 1911 Russian Gleb Kotelnikov invented the first knapsack parachute 21 although Hermann Lattemann and his wife Kathe Paulus had been jumping with bagged parachutes in the last decade of the 19th century nbsp Albert Berry collapses his parachute on Kinloch Field at Jefferson Barracks Missouri after his jump on 1 March 1912 In 1912 on a road near Tsarskoye Selo years before it became part of St Petersburg Kotelnikov successfully demonstrated the braking effects of a parachute by accelerating a Russo Balt automobile to its top speed and then opening a parachute attached to the back seat thus also inventing the drogue parachute 21 On 1 March 1912 U S Army Captain Albert Berry made the first attached type parachute jump in the United States from a fixed wing aircraft a Benoist pusher while flying above Jefferson Barracks St Louis Missouri The jump utilized a parachute stored or housed in a cone shaped casing under the airplane and attached to a harness on the jumper s body 22 nbsp A picture of Stefan Banic s designStefan Banic patented an umbrella like design in 1914 23 and sold or donated the patent to the United States military which later modified his design resulting in the first military parachute 24 25 Banic had been the first person to patent the parachute 26 and his design was the first to properly function in the 20th century 26 clarification needed On June 21 1913 Georgia Broadwick became the first woman to parachute jump from a moving aircraft doing so over Los Angeles California 20 In 1914 while doing demonstrations for the U S Army Broadwick deployed her chute manually thus becoming the first person to jump free fall World War I nbsp Kite balloon observers preparing to descend by parachute The first military use of the parachute was by artillery observers on tethered observation balloons in World War I These were tempting targets for enemy fighter aircraft though difficult to destroy due to their heavy anti aircraft defenses Because it was difficult to escape from them and dangerous when on fire due to their hydrogen inflation observers would abandon them and descend by parachute as soon as enemy aircraft were seen The ground crew would then attempt to retrieve and deflate the balloon as quickly as possible The main part of the parachute was in a bag suspended from the balloon with the pilot wearing only a simple waist harness attached to the main parachute When the balloon crew jumped the main part of the parachute was pulled from the bag by the crew s waist harness first the shroud lines followed by the main canopy This type of parachute was first adopted on a large scale for their observation balloon crews by the Germans and then later by the British and French While this type of unit worked well from balloons it had mixed results when used on fixed wing aircraft by the Germans where the bag was stored in a compartment directly behind the pilot In many instances where it did not work the shroud lines became entangled with the spinning aircraft Although this type of parachute saved a number of famous German fighter pilots including Hermann Goring 27 no parachutes were issued to the crews of Allied heavier than air aircraft It has been claimed that the reason was to avoid pilots jumping from the plane when hit rather than trying to save the aircraft but Air Vice Marshall Arthur Gould Lee himself a pilot during the war examined the British War Office files after the war and found no evidence of such claim 28 Airplane cockpits at that time also were not large enough to accommodate a pilot and a parachute since a seat that would fit a pilot wearing a parachute would be too large for a pilot not wearing one This is why the German type was stowed in the fuselage rather than being of the backpack type Weight was at the very beginning also a consideration since planes had limited load capacity Carrying a parachute impeded performance and reduced the useful offensive and fuel load In the UK Everard Calthrop a railway engineer and breeder of Arab horses invented and marketed through his Aerial Patents Company a British Parachute and the Guardian Angel parachute As part of an investigation into Calthrop s design on 13 January 1917 test pilot Clive Franklyn Collett successfully jumped from a Royal Aircraft Factory BE 2c flying over Orford Ness Experimental Station at 180 metres 590 ft 29 30 He repeated the experiment several days later Following on from Collett balloon officer Thomas Orde Lees known as the Mad Major successfully jumped from Tower Bridge in London 31 32 which led to the balloonists of the Royal Flying Corps using parachutes though they were issued for use in aircraft In 1911 Solomon Lee Van Meter Jr of Lexington Kentucky submitted an application for and in July 1916 received a patent for a backpack style parachute the Aviatory Life Buoy 33 His self contained device featured a revolutionary quick release mechanism the ripcord that allowed a falling aviator to expand the canopy only when safely away from the disabled aircraft 34 Otto Heinecke a German airship ground crewman designed a parachute which the German air service introduced in 1918 becoming the world s first air service to introduce a standard parachute Schroeder company of Berlin manufactured Heinecke s design 30 The first successful use of this parachute was by Leutnant Helmut Steinbrecher of Jagdstaffel 46 who bailed on 27 June 1918 from his stricken fighter airplane to become the first pilot in history to successfully do so 30 Although many pilots were saved by the Heinecke design their efficacy was relatively poor Out of the first 70 German airmen to bail out around a third died 35 These fatalities were mostly due to the chute or ripcord becoming entangled in the airframe of their spinning aircraft or because of harness failure a problem fixed in later versions 35 The French British American and Italian air services later based their first parachute designs on the Heinecke parachute to varying extents 36 In the UK Sir Frank Mears who was serving as a Major in the Royal Flying Corps in France Kite Balloon section registered a patent in July 1918 for a parachute with a quick release buckle known as the Mears parachute which was in common use from then onwards 37 Post World War I nbsp Ben Turner making a parachute jump from a plane at Camden Sydney 14 August 1938 The experience with parachutes during the war highlighted the need to develop a design that could be reliably used to exit a disabled airplane For instance tethered parachutes did not work well when the aircraft was spinning After the war Major Edward L Hoffman of the United States Army led an effort to develop an improved parachute by bringing together the best elements of multiple parachute designs Participants in the effort included Leslie Irvin and James Floyd Smith The team eventually created the Airplane Parachute Type A This incorporated three key elements storing the parachute in a soft pack worn on the back as demonstrated by Charles Broadwick in 1906 a ripcord for manually deploying the parachute at a safe distance from the airplane from a design by Albert Leo Stevens and a pilot chute that draws the main canopy from the pack In 1919 Irvin successfully tested the parachute by jumping from an airplane The Type A parachute was put into production and over time saved a number of lives 20 The effort was recognized by the awarding of the Robert J Collier Trophy to Major Edward L Hoffman in 1926 38 Irvin became the first person to make a premeditated free fall parachute jump from an airplane An early brochure of the Irvin Air Chute Company credits William O Connor as having become on 24 August 1920 at McCook Field near Dayton Ohio the first person to be saved by an Irvin parachute 39 Test pilot Lt Harold R Harris made another life saving jump at McCook Field on 20 October 1922 Shortly after Harris jump two Dayton newspaper reporters suggested the creation of the Caterpillar Club for successful parachute jumps from disabled aircraft Beginning with Italy in 1927 several countries experimented with using parachutes to drop soldiers behind enemy lines The regular Soviet Airborne Troops were established as early as 1931 after a number of experimental military mass jumps starting from 2 August 1930 21 Earlier the same year the first Soviet mass jumps led to the development of the parachuting sport in the Soviet Union 21 By the time of World War II large airborne forces were trained and used in surprise attacks as in the battles for Fort Eben Emael and The Hague the first large scale opposed landings of paratroopers in military history by the Germans 40 This was followed later in the war by airborne assaults on a larger scale such as the Battle of Crete and Operation Market Garden the latter being the largest airborne military operation ever 41 Aircraft crew were routinely equipped with parachutes for emergencies as well citation needed In 1937 drag chutes were used in aviation for the first time by Soviet airplanes in the Arctic that were providing support for the polar expeditions of the era such as the first drifting ice station North Pole 1 The drag chute allowed airplanes to land safely on smaller ice floes 21 Most parachutes were made of silk until World War II cut off supplies from Japan After Adeline Gray made the first jump using a nylon parachute in June 1942 the industry switched to nylon 42 TypesThis section is missing information about ringslot and ringsail parachutes Please expand the section to include this information Further details may exist on the talk page August 2022 This section needs attention from an expert in aviation The specific problem is Ignorance about these parachute types has led to an error in the Apollo command and service module page WikiProject Aviation may be able to help recruit an expert August 2022 Today s modern parachutes are classified into two categories ascending and descending canopies citation needed All ascending canopies refer to paragliders built specifically to ascend and stay aloft as long as possible Other parachutes including ram air non elliptical are classified as descending canopies by manufacturers Some modern parachutes are classified as semi rigid wings which are maneuverable and can make a controlled descent to collapse on impact with the ground Round nbsp An American paratrooper using an MC1 1C series round parachute Round parachutes are purely a drag device that is unlike the ram air types they provide no lift and are used in military emergency and cargo applications e g airdrops Most have large dome shaped canopies made from a single layer of triangular cloth gores Some skydivers call them jellyfish chutes because of the resemblance to the marine organisms Modern sports parachutists rarely use this type The first round parachutes were simple flat circulars These early parachutes suffered from instability caused by oscillations A hole in the apex helped to vent some air and reduce the oscillations Many military applications adopted conical i e cone shaped or parabolic a flat circular canopy with an extended skirt shapes such as the United States Army T 10 static line parachute A round parachute with no holes in it is more prone to oscillate and is not considered to be steerable Some parachutes have inverted dome shaped canopies These are primarily used for dropping non human payloads due to their faster rate of descent Forward speed 5 13 km h and steering can be achieved by cuts in various sections gores across the back or by cutting four lines in the back thereby modifying the canopy shape to allow air to escape from the back of the canopy providing limited forward speed Other modifications sometimes used are cuts in various gores to cause some of the skirt to bow out Turning is accomplished by forming the edges of the modifications giving the parachute more speed from one side of the modification than the other This gives the jumpers the ability to steer the parachute such as the United States Army MC series parachutes enabling them to avoid obstacles and to turn into the wind to minimize horizontal speed at landing Cruciform This section needs to be updated The reason given is The statements in the Cruciform subsection regarding the T 11 parachute and its replacement of the T 10 are prospective toward an ambiguous point in the future and tells the reader nothing chronologically useful Regardless it appears the program mentioned has now been complete for several years requiring edits to this description Please help update this article to reflect recent events or newly available information March 2021 The unique design characteristics of cruciform parachutes decrease oscillation its user swinging back and forth and violent turns during descent This technology will be used by the United States Army as it replaces its older T 10 parachutes with T 11 parachutes under a program called Advanced Tactical Parachute System ATPS The ATPS canopy is a highly modified version of a cross cruciform platform and is square in appearance The ATPS system will reduce the rate of descent by 30 percent from 21 feet per second 6 4 m s to 15 75 feet per second 4 80 m s The T 11 is designed to have an average rate of descent 14 slower than the T 10D thus resulting in lower landing injury rates for jumpers The decline in the rate of descent will reduce the impact energy by almost 25 to lessen the potential for injury Pull down apex nbsp 1970s high performance pull down apex canopy as seen in the round or really elliptical parachute s centre nbsp 1970s round elliptical showing 4 controllable turn slots plus another small side vent and one of 5 rear vents A variation on the round parachute is the pull down apex parachute invented by a Frenchman named Pierre Marcel Lemoigne 43 44 45 The first widely used canopy of this type was called the Para Commander made by the Pioneer Parachute Co although there are many other canopies with a pull down apex produced in the years thereafter these had minor differences in attempts to make a higher performance rig such as different venting configurations They are all considered round parachutes but with suspension lines to the canopy apex that apply load there and pull the apex closer to the load distorting the round shape into a somewhat flattened or lenticular shape when viewed from the side And while called rounds they generally have an elliptical shape when viewed from above or below with the sides bulging out more than the for d and aft dimension the chord see the lower photo to the right and you likely can ascertain the difference Due to their lenticular shape and appropriate venting they have a considerably faster forward speed than say a modified military canopy And due to controllable rear facing vents in the canopy s sides they also have much snappier turning capabilities though they are decidedly low performance compared to today s ram air rigs From about the mid 1960s to the late 1970s this was the most popular parachute design type for sport parachuting prior to this period modified military rounds were generally used and after ram air squares became common Note that the use of the word elliptical for these round parachutes is somewhat dated and may cause slight confusion since some squares i e ram airs are elliptical nowadays too Annular Some designs with a pull down apex have the fabric removed from the apex to open a hole through which air can exit most if not all round canopies have at least a small hole to allow easier tie down for packing these aren t considered annular giving the canopy an annular geometry This hole can be very pronounced in some designs taking up more space than the parachute They also have decreased horizontal drag due to their flatter shape and when combined with rear facing vents can have considerable forward speed Truly annular designs with a hole large enough that the canopy can be classified as ring shaped are uncommon Rogallo wing Sport parachuting has experimented with the Rogallo wing among other shapes and forms These were usually an attempt to increase the forward speed and reduce the landing speed offered by the other options at the time The ram air parachute s development and the subsequent introduction of the sail slider to slow deployment reduced the level of experimentation in the sport parachuting community The parachutes are also hard to build Ribbon and ring nbsp The Mars Science Laboratory capsule carrying the Mars rover Curiosity descending under its supersonic disk gap band 46 parachute Ribbon and ring parachutes have similarities to annular designs They are frequently designed to deploy at supersonic speeds A conventional parachute would instantly burst upon opening and be shredded at such speeds Ribbon parachutes have a ring shaped canopy often with a large hole in the centre to release the pressure Sometimes the ring is broken into ribbons connected by ropes to leak air even more These large leaks lower the stress on the parachute so it does not burst or shred when it opens Ribbon parachutes made of Kevlar are used on nuclear bombs such as the B61 and B83 47 Ram air Main article Parafoil The principle of the Ram Air Multicell Airfoil was conceived in 1963 by Canadian Domina Dom C Jalbert but serious problems had to be solved before a ram air canopy could be marketed to the sport parachuting community 48 Ram air parafoils are steerable as are most canopies used for sport parachuting and have two layers of fabric top and bottom connected by airfoil shaped fabric ribs to form cells The cells fill with higher pressure air from vents that face forward on the leading edge of the airfoil The fabric is shaped and the parachute lines trimmed under load such that the ballooning fabric inflates into an airfoil shape This airfoil is sometimes maintained by use of fabric one way valves called airlocks The first jump of this canopy a Jalbert Parafoil was made when by International Skydiving Hall of Fame member Paul Pop Poppenhager 49 Varieties nbsp A United States Navy Parachute Team Leap Frogs jumper landing a square ram air parachute Personal ram air parachutes are loosely divided into two varieties rectangular or tapered commonly called squares or ellipticals respectively Medium performance canopies reserve BASE canopy formation and accuracy type are usually rectangular High performance ram air parachutes have a slightly tapered shape to their leading and or trailing edges when viewed in plan form and are known as ellipticals Sometimes all the taper is on the leading edge front and sometimes in the trailing edge tail Ellipticals are usually used only by sport parachutists They often have smaller more numerous fabric cells and are shallower in profile Their canopies can be anywhere from slightly elliptical to highly elliptical indicating the amount of taper in the canopy design which is often an indicator of the responsiveness of the canopy to control input for a given wing loading and of the level of experience required to pilot the canopy safely citation needed The rectangular parachute designs tend to look like square inflatable air mattresses with open front ends They are generally safer to operate because they are less prone to dive rapidly with relatively small control inputs they are usually flown with lower wing loadings per square foot of area and they glide more slowly They typically have a lower glide ratio Wing loading of parachutes is measured similarly to that of aircraft comparing exit weight to area of parachute fabric Typical wing loading for students accuracy competitors and BASE jumpers is less than 5 kg per square meter often 0 3 kilograms per square meter or less Most student skydivers fly with wing loading below 5 kg per square meter Most sport jumpers fly with wing loading between 5 and 7 kg per square meter but many interested in performance landings exceed this wing loading Professional canopy pilots compete with wing loading of 10 to over 15 kilograms per square meter While ram air parachutes with wing loading higher than 20 kilograms per square meter have been landed this is strictly the realm of professional test jumpers Smaller parachutes tend to fly faster for the same load and ellipticals respond faster to control input Therefore small elliptical designs are often chosen by experienced canopy pilots for the thrilling flying they provide Flying a fast elliptical requires much more skill and experience Fast ellipticals are also considerably more dangerous to land With high performance elliptical canopies nuisance malfunctions can be much more serious than with a square design and may quickly escalate into emergencies Flying highly loaded elliptical canopies is a major contributing factor in many skydiving accidents although advanced training programs are helping to reduce this danger citation needed High speed cross braced parachutes such as the Velocity VX XAOS and Sensei have given birth to a new branch of sport parachuting called swooping A race course is set up in the landing area for expert pilots to measure the distance they are able to fly past the 1 5 metre 4 9 ft tall entry gate Current world records exceed 180 metres 590 ft Aspect ratio is another way to measure ram air parachutes Aspect ratios of parachutes are measured the same way as aircraft wings by comparing span with chord Low aspect ratio parachutes i e span 1 8 times the chord are now limited to precision landing competitions Popular precision landing parachutes include Jalbert now NAA Para Foils and John Eiff s series of Challenger Classics While low aspect ratio parachutes tend to be extremely stable with gentle stall characteristics they suffer from steep glide ratios and a small tolerance or sweet spot for timing the landing flare Because of their predictable opening characteristics parachutes with a medium aspect ratio around 2 1 are widely used for reserves BASE and canopy formation competition Most medium aspect ratio parachutes have seven cells High aspect ratio parachutes have the flattest glide and the largest tolerance for timing the landing flare but the least predictable openings An aspect ratio of 2 7 is about the upper limit for parachutes High aspect ratio canopies typically have nine or more cells All reserve ram air parachutes are of the square variety because of the greater reliability and the less demanding handling characteristics Paragliders Main article paraglider This section does not cite any sources Please help improve this section by adding citations to reliable sources Unsourced material may be challenged and removed October 2021 Learn how and when to remove this template message nbsp Paragliding at Cochrane hill AB Canada 1991 An APCO Starlite 26 nbsp Apco Starlite 26 paraglider launch inflating cells by pulling up top risers nbsp Paragliding over Christ the Redeemer statue in Rio de Janeiro Brazil 2015Paragliders virtually all of which use ram air canopies are more akin to today s sport parachutes than say parachutes of the mid 1970s and earlier Technically they are ascending parachutes though that term is not used in the paragliding community and they have the same basic airfoil design of today s square or elliptical sports parachuting canopy but generally have more sectioned cells higher aspect ratio and a lower profile Cell count varies widely typically from the high 20s to the 70s while aspect ratio can be 8 or more though aspect ratio projected for such a canopy might be down at 6 or so both outrageously higher than a representative skydiver s parachute The wing span is typically so great that it s far closer to a very elongated rectangle or ellipse than a square and that term is rarely used by paraglider pilots Similarly span might be 15 m with span projected at 12 m Canopies are still attached to the harness by suspension lines and four or six risers but they use lockable carabiners as the final connection to the harness Modern high performance paragliders often have the cell openings closer to the bottom of the leading edge and the end cells might appear to be closed both for aerodynamic streamlining these apparently closed end cells are vented and inflated from the adjacent cells which have venting in the cell walls The main difference is in paragliders usage typically longer flights that can last all day and hundreds of kilometres in some cases The harness is also quite different from a parachuting harness and can vary dramatically from ones for the beginner which might be just a bench seat with nylon material and webbing to ensure the pilot is secure no matter the position to seatboardless ones for high altitude and cross country flights these are usually full body cocoon or hammock like devices to include the outstretched legs called speedbags aerocones etc to ensure aerodynamic efficiency and warmth In many designs there will be protection for the back and shoulder areas built in and support for a reserve canopy water container etc Some even have windshields Because paragliders are made for foot or ski launch they aren t suitable for terminal velocity openings and there is no slider to slow down an opening paraglider pilots typically start with an open but uninflated canopy To launch a paraglider one typically spreads out the canopy on the ground to closely approximate an open canopy with the suspension lines having little slack and less tangle see more in Paragliding Depending on the wind the pilot has three basic options 1 a running forward launch typically in no wind or slight wind 2 a standing launch in ideal winds and 3 a reverse launch in higher winds In ideal winds the pilot pulls on the top risers to have the wind inflate the cells and simply eases the brakes down much like an aircraft s flaps and takes off Or if there is no wind the pilot runs or skis to make it inflate typically at the edge of a cliff or hill Once the canopy is above one s head it s a gentle pull down on both toggles in ideal winds a tow say behind a vehicle on flat ground a continued run down the hill etc Ground handling in a variety of winds is important and there are even canopies made strictly for that practice to save on wear and tear of more expensive canopies designed for say XC competition or just recreational flying General characteristics Main parachutes used by skydivers today are designed to open softly Overly rapid deployment was an early problem with ram air designs The primary innovation that slows the deployment of a ram air canopy is the slider a small rectangular piece of fabric with a grommet near each corner Four collections of lines go through the grommets to the risers risers are strips of webbing joining the harness and the rigging lines of a parachute During deployment the slider slides down from the canopy to just above the risers The slider is slowed by air resistance as it descends and reduces the rate at which the lines can spread This reduces the speed at which the canopy can open and inflate At the same time the overall design of a parachute still has a significant influence on the deployment speed Modern sport parachutes deployment speeds vary considerably Most modern parachutes open comfortably but individual skydivers may prefer harsher deployment The deployment process is inherently chaotic Rapid deployments can still occur even with well behaved canopies On rare occasions deployment can even be so rapid that the jumper suffers bruising injury or death Reducing the amount of fabric decreases the air resistance This can be done by making the slider smaller inserting a mesh panel or cutting a hole in the slider Deployment nbsp Animation of 3 ring release system used by a skydiver to cut away the main parachute It utilizes a mechanical advantage of 200 to 1 Reserve parachutes usually have a ripcord deployment system which was first designed by Theodore Moscicki but most modern main parachutes used by sports parachutists use a form of hand deployed pilot chute A ripcord system pulls a closing pin sometimes multiple pins which releases a spring loaded pilot chute and opens the container the pilot chute is then propelled into the air stream by its spring then uses the force generated by passing air to extract a deployment bag containing the parachute canopy to which it is attached via a bridle A hand deployed pilot chute once thrown into the air stream pulls a closing pin on the pilot chute bridle to open the container then the same force extracts the deployment bag There are variations on hand deployed pilot chutes but the system described is the more common throw out system Only the hand deployed pilot chute may be collapsed automatically after deployment by a kill line reducing the in flight drag of the pilot chute on the main canopy Reserves on the other hand do not retain their pilot chutes after deployment The reserve deployment bag and pilot chute are not connected to the canopy in a reserve system This is known as a free bag configuration and the components are sometimes not recovered after a reserve deployment Occasionally a pilot chute does not generate enough force either to pull the pin or to extract the bag Causes may be that the pilot chute is caught in the turbulent wake of the jumper the burble the closing loop holding the pin is too tight or the pilot chute is generating insufficient force This effect is known as pilot chute hesitation and if it does not clear it can lead to a total malfunction requiring reserve deployment Paratroopers main parachutes are usually deployed by static lines that release the parachute yet retain the deployment bag that contains the parachute without relying on a pilot chute for deployment In this configuration the deployment bag is known as a direct bag system in which the deployment is rapid consistent and reliable Safety nbsp RAF Typhoon using a drogue parachute for braking after landing A parachute is carefully folded or packed to ensure that it will open reliably If a parachute is not packed properly it can result in a malfunction where the main parachute fails to deploy correctly or fully In the United States and many developed countries emergency and reserve parachutes are packed by riggers who must be trained and certified according to legal standards Sport skydivers are always trained to pack their own primary main parachutes Exact numbers are difficult to estimate because parachute design maintenance loading packing technique and operator experience all have a significant impact on malfunction rates Approximately one in a thousand sport main parachute openings malfunctions requiring the use of the reserve parachute although some skydivers have many thousands of jumps and never needed to use their reserve parachute Reserve parachutes are packed and deployed somewhat differently They are also designed more conservatively favouring reliability over responsiveness and are built and tested to more exacting standards making them more reliable than main parachutes Regulated inspection intervals coupled with significantly less use contributes to reliability as wear on some components can adversely affect reliability The safety advantage of a reserve parachute comes from the small probability of a main malfunction being multiplied by the even smaller probability of a reserve malfunction This yields an even smaller probability of a double malfunction although there is also a small possibility of a malfunctioning main parachute not being able to be released and thus interfering with the reserve parachute In the United States the 2017 average fatality rate is recorded to be 1 in 133 571 jumps 50 Injuries and fatalities in sport skydiving are possible even under a fully functional main parachute such as may occur if the skydiver makes an error in judgment while flying the canopy which results in a high speed impact either with the ground or with a hazard on the ground which might otherwise have been avoided or results in collision with another skydiver under canopy MalfunctionsSee also Malfunction parachuting nbsp The Apollo 15 spacecraft landed safely despite a parachute line failure in 1971 Below are listed the malfunctions specific to round parachutes A Mae West or blown periphery is a type of round parachute malfunction that contorts the shape of the canopy into the outward appearance of a large brassiere named after the generous proportions of the late actress Mae West The column of nylon fabric buffeted by the wind rapidly heats from friction and opposite sides of the canopy can fuse together in a narrow region removing any chance of it opening fully A streamer is the main chute which becomes entangled in its lines and fails to deploy taking the shape of a paper streamer The parachutist cuts it away to provide space and clean air for deploying the reserve 51 An inversion occurs when one skirt of the canopy blows between the suspension lines on the opposite side of the parachute and then catches air That portion then forms a secondary lobe with the canopy inverted The secondary lobe grows until the canopy turns completely inside out A barber s pole describes having a tangle of lines behind the jumper s head who cuts away the main and opens his reserve 51 The horseshoe is an out of sequence deployment when the parachute lines and bag are released before the bag drogue and bridle This can cause the lines to become tangled or a situation where the parachute drogue is not released from the container 51 Jumper In Tow involves a static line that does not disconnect resulting in a jumper being towed behind the aircraft 51 Records nbsp A jumper in free fall in Venezuela with his parachute on his backOn August 16 1960 Joseph Kittinger in the Excelsior III test jump set the previous world record for the highest parachute jump He jumped from a balloon at an altitude of 102 800 feet 31 333 m which was also a piloted balloon altitude record at the time A small stabilizer chute deployed successfully and Kittinger fell for 4 minutes and 36 seconds 52 also setting a still standing world record for the longest parachute free fall if falling with a stabilizer chute is counted as free fall At an altitude of 17 500 feet 5 300 m Kittinger opened his main chute and landed safely in the New Mexico desert The whole descent took 13 minutes and 45 seconds 53 During the descent Kittinger experienced temperatures as low as 94 F 70 C In the free fall stage he reached a top speed of 614 mph 988 km h or 274 m s or Mach 0 8 54 According to Guinness World Records Yevgeni Andreyev a colonel in the Soviet Air Force held the official FAI record for the longest free fall parachute jump without drogue chute after falling for 24 500 m 80 380 ft from an altitude of 25 457 m 83 523 ft near the city of Saratov Russia on November 1 1962 until broken by Felix Baumgartner in 2012 Felix Baumgartner broke Joseph Kittinger s record on October 14 2012 with a jump from an altitude of 127 852 feet 38 969 3 m and reaching speeds up to 833 9 mph 1 342 0 km h or 372 8 m s or nearly Mach 1 1 Kittinger was an advisor for Baumgartner s jump 55 Alan Eustace made a jump from the stratosphere on October 24 2014 from an altitude of 135 889 108 feet 41 419 m However because Eustace s jump involved a drogue parachute while Baumgartner s did not their vertical speed and free fall distance records remain in different record categories UsesIn addition to the use of a parachute to slow the descent of a person or object a drogue parachute is used to aid horizontal deceleration of a land or air vehicle including fixed wing aircraft and drag racers provide stability as to assist certain types of light aircraft in distress 56 57 tandem free fall and as a pilot triggering deployment of a larger parachute Parachutes are also used as play equipment 58 See alsoAirdrop Ballistic parachute Cirrus Airframe Parachute System Extreme sport Free fall Parachute landing fall Parachuting Paragliding Ejection seatReferences Moolman Valerie 1980 The Road to Kitty Hawk New York Time Life Books pp 19 20 ISBN 9780809432608 a b White 1968 p 466 a b White 1968 pp 462f Leonardo the Man Who Saved Science Did Leonardo Really Invent the Parachute Secrets of the Dead PBS PBS 4 April 2017 a b c d White 1968 p 465 White 1968 pp 465f van den Broek Marc 2019 Leonardo da Vinci Spirits of Invention A Search for Traces Hamburg A TE M ISBN 978 3 00 063700 1 Da Vinci s Parachute Flies BBC News 2000 Swiss Man Safely Uses Leonardo da Vinci Parachute Fox News 2008 Archived from the original on 21 April 2010 Miller Francis Trevelyan 1930 The world in the air the story of flying in pictures G P Putnam s Sons pp 101 106 via Google Books Rathbone Alfred Day 1943 He s in the paratroops now New York Robert M McBride amp Company Retrieved 5 December 2022 via University of California Internet Archive a b Bogdanski Rene 2007 The Croatian Language by Example GRIN Verlag p 8 ISBN 9783638740869 via Google Books As an example for Diachronic analysis One of his most important inventions is without doubt the parachute which he experimented and tested on himself by jumping off a bridge in Venice As documented by the English bishop John Wilkins 1614 1672 30 years later in his bookMathematical Magicpublished in London in 1648 Parachute 321chutelibre in French Archived from the original on 20 January 2012 Parachuting Aero com Archived from the original on 17 November 2015 Like his countryman s concept Veranzio s seems to have remained an idea only Though his idea was greatly publicized no evidence has been found that there ever was a homo volans of his or any other time who tested and proved Veranzio s plan Gilles Antoine Langlois 1991 Folies tivolis et attractions les premiers parcs de loisirs parisiens in French Delegation a l action artistique de la ville de Paris p 144 ISBN 9782905118356 Duhem Jules 1943 Sorlot Fernand ed Histoire des idees aeronautiques avant Montgolfier in French Nouvelles Editions Latines p 263 Retrieved 25 July 2012 a b Soden Garrett 2005 Defying Gravity Land Divers Roller Coasters Gravity Bums and the Human Obsession with Falling W W Norton amp Company pp 21 22 ISBN 978 0 393 32656 7 via Google Books Fogel Gary B 2021 Sky Rider Park Van Tassel and the Rise of Ballooning in the West University of New Mexico Press pp 38 43 ISBN 978 0 8263 6282 7 Archived from the original on 22 November 2021 Retrieved 5 December 2022 a b De Prins der Geillustreerde Bladen 18 February 1911 pp 88 89 a b c Ritter Lisa April May 2010 Pack Man Charles Broadwick Invented a New Way of Falling Air amp Space Vol 25 no 1 pp 68 72 Retrieved 1 March 2013 a b c d e Parachuting Divo The Russian Book of records and achievements in Russian Reichhardt Tony 29 February 2012 Berry s Leap The Daily Planet Air amp Space Smithsonian Archived from the original on 26 April 2012 U S patent 1 108 484 Stefan Banic Konstrukter vynalezca Matematicky ustav Slovenska akademia vied obituary Retrieved 21 October 2010 Banic The inventor of the parachute 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Jr 1888 1937 Kentucky Educational Television 2010 Archived from the original on 6 July 2010 Retrieved 5 December 2022 a b Guttman Jon May 2012 Heinecke Parachute A Leap of Faith for WWI German Airmen Military History Magazine p 23 Mahncke J O E O December 2000 Early Parachutes An evaluation of the use of parachutes with special emphasis on the Royal Flying Corps and the German Lufstreitkrafte until 1918 South African Military History Journal 11 6 Archives The National The Discovery Service Collier 1920 1929 Recipients National Aeronautic Association Cooper Ralph S The Irvin Parachute 1924 Archived from the original on 30 August 2003 Retrieved 22 October 2013 via Earthlink net Dr L de Jong Het Koninkrijk der Nederlanden in de Tweede Wereldoorlog Dutch language part 3 RIOD Amsterdam 1969 Dr L de Jong Het Koninkrijk der Nederlanden in de Tweede Wereldoorlog Dutch language part 10a II RIOD Amsterdam 1980 obit adeline gray www oxford historical society org Retrieved 28 March 2021 Pierre Marcel Lemoigne U S patent 3 228 636 filed November 7 1963 issued January 11 1966 Palau Jean Michel February 20 2008 Historique du Parachutisme Ascensionnel Nautique in French Le Parachutisme Ascensionnel Nautique Retrieved October 22 2013 Includes photo of Lemoigne See also Theodor W Knacke Technical historical development of parachutes and their applications since World War I Technical paper A87 13776 03 03 9th Aerodynamic Decelerator and Balloon Technology Conference Albuquerque New Mexico October 7 9 1986 New York N Y American Institute of Aeronautics and Astronautics 1986 pages 1 10 Clark Ian Tanner Christopher 2017 06 08 A historical summary of the design development and analysis of the disk gap band parachute 2017 IEEE Aerospace Conference pp 1 17 doi 10 1109 AERO 2017 7943854 ISBN 978 1 5090 1613 6 S2CID 40095390 via IEEE Mitcheltree R Witkowski A High Altitude Test Program for a Mars Subsonic Parachute PDF American Institute of Aeronautics and Astronautics Archived from the original PDF on 2009 07 03 Ryan Charles W 1975 Sport Parachuting Chicago Henry Regnery Company p 191 ISBN 0 8092 8378 6 International Skydiving Museum amp Hall of Fame International Skydiving Hall of Fame Member Domina C Jalbert Retrieved 6 June 2020 Skydiving Safety United States Parachute Association Archived from the original on August 22 2018 Retrieved November 26 2018 a b c d Scott Royce E Bo Jump School at Fort Benning originally published in a column called DUSTOFF in the July August 1988 Issue of the Screaming Eagle Magazine Archived November 30 2010 at the Wayback Machine Jeffrey S Hampton December 15 2003 Hero of Aviation speaks about record setting free fall The Virginian Pilot p Y1 Tim Friend August 18 1998 Out of thin air His free fall from 20 miles 32 km put NASA on firm footing USA Today p 1D Data of the stratospheric balloon launched on 8 16 1960 For EXCELSIOR III Stratocat com ar September 25 2013 Retrieved October 22 2013 Faster than the speed of sound the man who falls to earth Independent co uk January 25 2010 Archived from the original on 2022 05 24 Ballistic recovery systems A U S patent 4607814 A Boris Popov August 26 1986 Klesius Michael January 2011 How Things Work Whole Airplane Parachute Air amp Space Retrieved October 22 2013 YPO Multi Coloured Parachute with 8 Handles 1 75m Dia accessed 1 February 2023BibliographyWhite Lynn July 1968 The Invention of the Parachute Technology and Culture 9 3 462 467 doi 10 2307 3101655 JSTOR 3101655 S2CID 111425847 Further readingMirsky Steve March 1 2019 Volunteers Jumped with or without a Parachute to Gauge Its Effectiveness Scientific American Retrieved December 28 2021 Pell Smith Gordon C S December 20 2003 Parachute Use to Prevent Death and Major Trauma Related to Gravitational Challenge Systematic Review of Randomised Controlled Trials British Medical Journal 327 7429 1459 1461 doi 10 1136 bmj 327 7429 1459 ISSN 0959 8138 PMC 300808 PMID 14684649 External links nbsp Look up parachute in Wiktionary the free dictionary nbsp Wikiquote has quotations related to Parachute nbsp Wikimedia Commons has media related to Parachutes CSPA The Canadian Sport Parachuting Association The governing body for sport skydiving in Canada First jump with parachute from moving plane Scientific American June 7 1913 Parachute History Program Executive Office PEO Soldier Skydiving education Para2000 book The 2nd FAI World Championships in Canopy Piloting 2008 at Pretoria Skydiving Club South Africa USPA The United States Parachute Association The governing body for sport skydiving in the U S The Parachute History Collection at Linda Hall Library Archived July 27 2011 at the Wayback Machine text searchable PDFs How Armies Hit the Silk June 1945 Popular Science James L H Peck detailed article on parachutes NumeroLa Revue aerienne directeur Emile Mousset First female parachutist Everard Calthrop Parachutist Drop From Tower Bridge Part 1 1918 Film of a successful parachute jump from Tower Bridge during World War I Retrieved from https en wikipedia org w index php title Parachute amp oldid 1199166095, wikipedia, wiki, book, books, library,

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