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Claymore mine

The Claymore mine is a directional anti-personnel mine developed for the United States Armed Forces. Its inventor, Norman MacLeod, named the mine after a large medieval Scottish sword. Unlike a conventional land mine, the Claymore may be command-detonated (fired by remote-control), and directional, shooting a wide pattern of metal balls into a kill zone. The Claymore can also be activated by a booby-trap tripwire firing system for use in area denial operations.

Claymore mine
The M18A1 Claymore mine with the M57 firing device and M4 electric blasting cap assembly.
TypeDirectional fragmentation anti-personnel mine
Place of originUnited States
Service history
In service1960–present
Used byUnited States, United Kingdom, Denmark
Wars
Production history
DesignerNorman Macleod and others
Designed1952–1956
ManufacturerMohawk Electrical Systems
Unit cost$119 as of 1993[1]
Specifications
Mass3.5 lb (1.6 kg)
Length216 mm (8.5 in)
Width38 mm (1.5 in)
Height124 mm (4.9 in)

Caliber.125, or 18-inch (3.2 mm) diameter steel balls, c. 700 per unit
Muzzle velocity3,995 ft/s (1,218 m/s)
Effective firing range50 m (55 yd)
Maximum firing range250 m (270 yd)
SightsPeep sight on early models, later a knife edge sight
FillingC-4
Filling weight680 g (24 oz)
Detonation
mechanism
Blasting Cap Assembly M4[2]

The Claymore fires steel balls out to about 100 m (110 yd) within a 60° arc in front of the device. It is used primarily in ambushes and as an anti-infiltration device against enemy infantry. It is also used against unarmored vehicles.

Many countries have developed and used mines like the Claymore. Examples include models MON-50, MON-90, MON-100, and MON-200 introduced by the Soviet Union and used by its successor Russia,[3] as well as MRUD (Serbia), MAPED F1 (France), and Mini MS-803 (South Africa).

Description

The M18A1 Claymore mine has a horizontally convex gray-green plastic case (inert training versions are light blue or green with a light blue band). The shape was developed through experimentation to deliver the optimum distribution of fragments at 50 m (55 yd) range. The case has the words "FRONT TOWARD ENEMY" embossed on the front of the mine.[4] A simple open sight on the top surface allows for aiming the mine. Two pairs of scissor legs attached to the bottom support the mine and allow it to be aimed vertically. On both sides of the sight are fuse wells set at 45 degrees.

Internally the mine contains a layer of C-4 explosive behind a matrix of about seven hundred 18-inch-diameter (3.2 mm) steel balls set into an epoxy resin.

When the M18A1 is detonated, the explosion drives the matrix forward, out of the mine at a velocity of 1,200 m/s (3,937 ft/s),[1] at the same time breaking it into individual fragments. The steel balls are projected in a 60° fan-shaped pattern that is 2.0 metres (6.6 ft) high and 50 m (55 yd) wide at a range of 50 m (55 yd). The force of the explosion deforms the relatively soft steel balls into a shape similar to a .22 rimfire projectile.[1] These fragments are moderately effective up to a range of 100 m (110 yd), with a hit probability of around 10% on a prone man-sized 1.3-square-foot (0.12 m2) target. The fragments can travel up to 250 m (270 yd). The optimum effective range is 50 m (55 yd), at which the optimal balance is achieved between lethality and area coverage, with a hit probability of 30% on a man-sized target.[5]

The weapon and all its accessories are carried in an M7 bandolier ("Claymore bag"). The mine is detonated as the enemy personnel approaches the killing zone. Controlled detonation may be accomplished by use of either an electrical or non-electrical firing system. When mines are employed in the controlled role, they are treated as individual weapons and are reported in the unit fire plan. They are not reported as mines; however, the emplacing unit must ensure that the mines are removed, detonated, or turned over to a relieving unit. The 100-foot (30 m) M4 electric firing wire on a green plastic spool is provided in each bandolier. The M57 firing device (colloquially referred to as the "clacker") is included with each mine. An M40 circuit test set is packed in each case of six mines. When the mines are daisy-chained together, one firing device can detonate several mines.

The mine can be detonated by any mechanism that activates the blasting cap. There are field-expedient methods of detonating the mine by tripwire, or by a timer, but these are rarely used.

Development

The development of the M18A1 mine dates back to work done during World War II. The Misznay–Schardin effect was independently discovered during that war by József Misznay, a Hungarian, and Hubert Schardin, a German. When a sheet of explosive detonates in contact with a heavy backing surface (for example, a metal plate), the resulting blast is primarily directed away from the surface in a single direction. Schardin spent some time developing the discovery as a side-attack anti-tank weapon, but development was incomplete at the end of the war. Schardin also spent time researching a "trench mine" that used a directional fragmentation effect.[1]

Norman MacLeod and Calord Corporation

 
Images from the 1956 Macleod patent

Following the massed Chinese attacks during the Korean War, Canada and the United States began to develop projects to counter them. Canada fielded a weapon called the "Phoenix" landmine, which used the Misznay–Schardin effect to project a spray of 0.25-inch (6.4 mm) steel cubes towards the enemy. The cubes were embedded in 5 pounds (2.3 kg) of Composition B explosive. It was too large to be a practical infantry weapon and was relatively ineffective, with a maximum effective range of only 20 to 30 yards (about 20 to 30 meters).[1]

Around 1952 Norman MacLeod, at his company the Calord Corporation, began working on a small directional mine for use by infantry. It is not clear if the United States Picatinny Arsenal took the concept from the Canadian weapon and asked Norman MacLeod to develop it, or if he developed the design independently and presented it to them. MacLeod designed a weapon called the T-48; broadly similar to the final M18A1, it lacked a number of the design details that made the M18A1 effective.

Through Picatinny, the United States Army accepted the weapon into service as the M18 Claymore and approximately 10,000 were produced. It was used in small numbers in Vietnam from around 1961. It was not until the improved M18A1 was developed that the Claymore became a widely used weapon.

The M18 was 9.25-inch (235 mm) long and 3.27-inch (83 mm) high, held in a plastic case with three folding spike legs on the bottom. An electrical blasting cap for triggering the mine was inserted through a small hole in the side. Internally the mine consisted of a layer of 12-ounce (340 g) of C-3 explosive (the forerunner of C-4 explosive) in front of which was laid an array of 0.25-inch (6.4 mm) steel cubes. In total the mine weighed about 2.43-pound (1.10 kg), and could be fitted with an optional peep sight for aiming.[6] It lacked the later version's iconic "FRONT TOWARD ENEMY" marking. The mine was planted in the ground, using its three sharp legs, and aimed in the direction of enemy approach; at that point, it was fitted with an electrical blasting cap. The mine was triggered from a safe position, preferably to the side and rear. The mine was barely more than a prototype and was not considered a "reliable casualty producer"; like the Phoenix it had an effective range of only 90 feet (27 m).[1]

MacLeod applied for a patent for the mine on 18 January 1956, and was granted it in February 1961.[7] The patent was later the subject of a civil court case between MacLeod, the Army, and Aerojet, which further developed the Claymore design. MacLeod's case collapsed when photographs of the German Trenchmine prototype were produced as evidence of prior art.[1]

Throner, Kennedy, Bledsoe, and Kincheloe at Aerojet

 
The original M18 Claymore mine. The detonator is inserted into the side.

In 1954 Picatinny Arsenal issued a request for proposals (RFP) to improve the M18 as a more effective weapon. At Aerojet in the early 1950s, Guy C. Throner had independently come up with a design for a Claymore-like mine. He worked with Don Kennedy and the two men submitted a 30-page proposal in response to Picatinny's RFP. They were awarded a $375,000 development contract to improve the Claymore design. The Picatinny criteria for the weapon were as follows:

  • It must weigh less than 3.5 pounds (1.6 kilograms)
  • It must throw enough fragments so that at a range of 55 yards (50 m) it achieves a 100 percent strike rate on a 1.3 square feet (0.12 m2) target (man-sized)
  • The fragment area must not be more than 8 feet (2.4 m) high and no more than 60 degrees wide
  • Fragments must have a velocity of 4,000 feet (1,200 m) per second providing 58 foot-pounds (79 joules) of kinetic energy delivered to the target.

The requirement for kinetic energy was based on the fact that 58-foot pounds is required to deliver a potentially lethal injury.[8] Given the requirements of weight and fragment density, approximately 700 fragments were needed, with the ability to aim the mine with an accuracy of around two feet (0.61 m) at the center of the target zone. The team at Aerojet were given access to all previous research into directional mines, including the M18 and the Phoenix, as well as German research. Dr. John Bledsoe led the initial project.[1]

The original M18 mine fell far short of Picatinny's requirements. One of the first improvements was to replace the steel cubes with 732-inch (5.6 mm) hardened 52100 alloy ball bearings. These performed poorly for two reasons. Firstly, the hardened steel balls spalled into fragments when hit by the shock of the explosion; the fragments were neither aerodynamic enough nor large enough to perform effectively. Secondly, the blast "leaked" between the balls, reducing their velocity.[1]

A second problem was the curvature of the mine. This was determined experimentally by Bledsoe, through a large number of test firings. After Bledsoe left the project to work at the Rheem corporation, William Kincheloe, another engineer, came onto the Claymore project.[1]

Kincheloe immediately suggested using softer 18-inch (3.2 mm) steel "gingle" balls, which were used in the foundry process. They did not spall from the shock of the explosive, but deformed into a useful aerodynamic shape similar to a .22 rimfire projectile. Using a homemade chronograph, the engineers clocked the balls at 3,775 feet per second (1,151 m/s). The second change was to use a poured plastic matrix to briefly contain the blast from the explosive, so that more of the blast energy was converted into projectile velocity. After a number of experiments, the engineers settled on Devcon-S steel-filled epoxy to hold the balls in place. With this change, the velocity improved to 3,995 feet per second (1,218 m/s).[1]

Technical challenges to overcome included developing a case to contain the corrosive C-3 explosive that would be durable enough to withstand months of field handling in wide temperature ranges. Using dyes to test various plastics for leaks, they found a suitable plastic called Durex 1661½, which could be easily molded into a case.[1]

 
A US Marine places a Claymore mine.

By the spring of 1956, Aerojet had a near-final design. It was awarded a pre-production contract for 1,000 M18A1 Claymores, designated T-48E1 during testing. The initial versions of the mine used two pairs of wire legs produced from number 9 (3 mm) wire. Later when production was ramped up, the design was changed to flat steel scissor, folding-type legs.[1]

Early pre-production mines were triggered using a battery pack, which had been used with the M18. This was found to be undesirable for a number of reasons. Bill Kincheloe came up with the idea of using a "Tiny Tim" toggle generator, of the type used with a number of Navy rockets.[1] Originally an aluminum box was used to hold the generator. Later a Philadelphia company, Molded Plastic Insulation Company, took over the manufacture of the firing device for the first large-scale production run producing a plastic device.[1]

The sighting for the device was originally intended to be a cheap pentaprism device, which would allow the user to look down from above and see the sight picture. After locating a suitably low-cost device, the engineers found that fumes from either the C-3 explosive or the cement used to glue the sight to the top of the mine corroded the plastic mirrors, rendering them unusable. They adopted simple peep sights, which were later replaced by a knife blade sight.

Testing concluded that the mine was effective out to approximately 110 yards (100 m), being capable of hitting 10% of the attacking force. At 55 yards (50 m), this increased to 30%. The development project completed, the Aerojet team sent the project back to Picatinny. The Arsenal bid it out to various component suppliers. In 1960 it was type standardized as the M18A1. It was first used in Vietnam in the spring or early summer 1966.[1]

Minor modifications were made to the mine during its service. A layer of tinfoil was added between the fragmentation matrix and the explosive. This slightly improves the fragment velocity, and protects the steel fragments from the corrosive explosive. A ferrite choke was added to prevent RF signals and lightning from triggering the mine.[1]

Variants

M68 Inert Training Kit

The M68 kit is designed to familiarize personnel with the placement and arming of a real M18 directional mine. It comes with all the components of a real Claymore kit packed in an M7 bandolier. The light blue or black plastic M33 Inert Anti-Personnel Mine is the training and practice version of the M18A1 Claymore. Some inert mines were green with a light blue band. It does not contain an explosive or pyrotechnic filler of any kind. It is packed in a Claymore bag with inert M10 simulated detonator cap wire, an M57 "clacker" firing control, and an M40 circuit test kit.

Mini-Multi-Purpose Infantry Munition

In early 2015, the U.S. Army began testing a smaller version of the Claymore called the Mini-Multi-Purpose Infantry Munition (M-MPIMS). It weighs 2 lb (0.91 kg) and has a 50 m (160 ft) effective range, similar to the full-size Claymore. At its optimized range of 30 m (98 ft), the fragmentation zone is 23 m (75 ft) wide and 2 m (6.6 ft) high, with a minimum of five hits per 1 m2 (11 sq ft). It has the surface space of an average smartphone and includes a Picatinny rail for camera, laser, or other attachments. The M-MPIMS is designed to be more controllable than the Claymore with less collateral damage, using an insensitive munitions explosive that is poured rather than packed for more uniform distribution results in more consistent blast pattern. Rear-safety distance has been decreased to 15 m (49 ft) and shelf life has been increased to 25 years.[9]

International directional fragmentation AP mines

PADMINE is an anti-personnel directional fragmentation mine produced by the United Kingdom, similar to the Claymore in cosmetic design with two swivelling legs, inserted into soft-ground. Its lethality out to 50 meters arrives in the form of 650 steel balls and it is activated by remote control or trip wire.

The M18 directional fragmentation anti-personnel mine, developed by Cardoen of Chile, contains 626 grams of explosives, surrounded by 607 AP fragmentation units providing a 60 degree arc of fire, with a 50-250 meters lethal range.

Italy produces the DAF M6 and DAF M7 directional fragmentation mines, weighing 18 and 10 kilograms respectively, with trip wire or remote control detonation. Their appearance is similar to the Claymore mine.[10][better source needed]

National copies

 
A Chinese Type 66 claymore mine

A number of licensed and unlicensed copies of the mine have been produced.

See also

References

  1. ^ a b c d e f g h i j k l m n o p q Larry Grupp (May 1993). Claymore mines, Their History and Development. Paladin Press. ISBN 0-87364-715-7.
  2. ^ (PDF). Washington, D.C.: Headquarters, Department of the Army. October 1995. pp. 1–8. Archived from the original (PDF) on May 21, 2015. Retrieved May 19, 2015 – via mines.duvernois.org.
  3. ^ Boffey, Daniel (13 August 2023). "'You don't survive that': Ukraine sappers dice with death to clear Russian mines". The Guardian.
  4. ^ FM 3–21.75 Ch. 14
  5. ^ Pike, John. "M18 Claymore". www.globalsecurity.org. from the original on 5 April 2018. Retrieved 4 April 2018.
  6. ^ M18 at ORDATA
  7. ^ "Patent 2,972,949 ANTI-PERSONNEL FRAGMENTATION WEAPON".
  8. ^ Stephen G. Floroff. (PDF). Archived from the original (PDF) on January 27, 2007.
  9. ^ RPGs, grenades and dummies: 9 soldier-tested gadgets 2015-04-08 at the Wayback Machine – Militarytimes.com, 6 April 2015
  10. ^ . Archived from the original on 2016-10-22. Retrieved 2019-07-22.
  11. ^ . Technical specs at James Madison University – Mine Action Information Center. Archived from the original on 2007-10-17.
  12. ^ . Floro International Corporation. Archived from the original on 2011-07-19. Retrieved 2011-01-10.
  13. ^ . webcache.googleusercontent.com. Archived from the original on 18 January 2018. Retrieved 4 April 2018.
  14. ^ . Technical specs at James Madison University – Mine Action Information Center. Archived from the original on 2007-10-17.
  15. ^ . Technical specs at James Madison University – Mine Action Information Center. Archived from the original on 2007-10-17.

External links

  • International Coalition to Ban Landmines – Countries using Claymore type mines (PDF)
  • FM 23-23 ANTIPERSONNEL MINE M18A1 AND M18 (CLAYMORE) Field Manual—GlobalSecurity.org

claymore, mine, front, toward, enemy, redirects, here, episode, punisher, front, toward, enemy, punisher, directional, anti, personnel, mine, developed, united, states, armed, forces, inventor, norman, macleod, named, mine, after, large, medieval, scottish, sw. Front Toward Enemy redirects here For the episode of The Punisher see Front Toward Enemy The Punisher The Claymore mine is a directional anti personnel mine developed for the United States Armed Forces Its inventor Norman MacLeod named the mine after a large medieval Scottish sword Unlike a conventional land mine the Claymore may be command detonated fired by remote control and directional shooting a wide pattern of metal balls into a kill zone The Claymore can also be activated by a booby trap tripwire firing system for use in area denial operations Claymore mineThe M18A1 Claymore mine with the M57 firing device and M4 electric blasting cap assembly TypeDirectional fragmentation anti personnel minePlace of originUnited StatesService historyIn service1960 presentUsed byUnited States United Kingdom DenmarkWarsVietnam War Korean Demilitarized Zone Cambodian Civil War Soviet Afghan War Iraq War Gulf War Operation Protective Edge Bosnian War Rhodesian Bush War War in Afghanistan Sri Lankan Civil War Myanmar Civil War 2022 Russian invasion of UkraineProduction historyDesignerNorman Macleod and othersDesigned1952 1956ManufacturerMohawk Electrical SystemsUnit cost 119 as of 1993 1 SpecificationsMass3 5 lb 1 6 kg Length216 mm 8 5 in Width38 mm 1 5 in Height124 mm 4 9 in Caliber 125 or 1 8 inch 3 2 mm diameter steel balls c 700 per unitMuzzle velocity3 995 ft s 1 218 m s Effective firing range50 m 55 yd Maximum firing range250 m 270 yd SightsPeep sight on early models later a knife edge sightFillingC 4Filling weight680 g 24 oz DetonationmechanismBlasting Cap Assembly M4 2 The Claymore fires steel balls out to about 100 m 110 yd within a 60 arc in front of the device It is used primarily in ambushes and as an anti infiltration device against enemy infantry It is also used against unarmored vehicles Many countries have developed and used mines like the Claymore Examples include models MON 50 MON 90 MON 100 and MON 200 introduced by the Soviet Union and used by its successor Russia 3 as well as MRUD Serbia MAPED F1 France and Mini MS 803 South Africa Contents 1 Description 2 Development 2 1 Norman MacLeod and Calord Corporation 2 2 Throner Kennedy Bledsoe and Kincheloe at Aerojet 3 Variants 3 1 M68 Inert Training Kit 3 2 Mini Multi Purpose Infantry Munition 4 International directional fragmentation AP mines 5 National copies 6 See also 7 References 8 External linksDescription EditThe M18A1 Claymore mine has a horizontally convex gray green plastic case inert training versions are light blue or green with a light blue band The shape was developed through experimentation to deliver the optimum distribution of fragments at 50 m 55 yd range The case has the words FRONT TOWARD ENEMY embossed on the front of the mine 4 A simple open sight on the top surface allows for aiming the mine Two pairs of scissor legs attached to the bottom support the mine and allow it to be aimed vertically On both sides of the sight are fuse wells set at 45 degrees Internally the mine contains a layer of C 4 explosive behind a matrix of about seven hundred 1 8 inch diameter 3 2 mm steel balls set into an epoxy resin When the M18A1 is detonated the explosion drives the matrix forward out of the mine at a velocity of 1 200 m s 3 937 ft s 1 at the same time breaking it into individual fragments The steel balls are projected in a 60 fan shaped pattern that is 2 0 metres 6 6 ft high and 50 m 55 yd wide at a range of 50 m 55 yd The force of the explosion deforms the relatively soft steel balls into a shape similar to a 22 rimfire projectile 1 These fragments are moderately effective up to a range of 100 m 110 yd with a hit probability of around 10 on a prone man sized 1 3 square foot 0 12 m2 target The fragments can travel up to 250 m 270 yd The optimum effective range is 50 m 55 yd at which the optimal balance is achieved between lethality and area coverage with a hit probability of 30 on a man sized target 5 The weapon and all its accessories are carried in an M7 bandolier Claymore bag The mine is detonated as the enemy personnel approaches the killing zone Controlled detonation may be accomplished by use of either an electrical or non electrical firing system When mines are employed in the controlled role they are treated as individual weapons and are reported in the unit fire plan They are not reported as mines however the emplacing unit must ensure that the mines are removed detonated or turned over to a relieving unit The 100 foot 30 m M4 electric firing wire on a green plastic spool is provided in each bandolier The M57 firing device colloquially referred to as the clacker is included with each mine An M40 circuit test set is packed in each case of six mines When the mines are daisy chained together one firing device can detonate several mines The mine can be detonated by any mechanism that activates the blasting cap There are field expedient methods of detonating the mine by tripwire or by a timer but these are rarely used Development EditThe development of the M18A1 mine dates back to work done during World War II The Misznay Schardin effect was independently discovered during that war by Jozsef Misznay a Hungarian and Hubert Schardin a German When a sheet of explosive detonates in contact with a heavy backing surface for example a metal plate the resulting blast is primarily directed away from the surface in a single direction Schardin spent some time developing the discovery as a side attack anti tank weapon but development was incomplete at the end of the war Schardin also spent time researching a trench mine that used a directional fragmentation effect 1 Norman MacLeod and Calord Corporation Edit Images from the 1956 Macleod patentFollowing the massed Chinese attacks during the Korean War Canada and the United States began to develop projects to counter them Canada fielded a weapon called the Phoenix landmine which used the Misznay Schardin effect to project a spray of 0 25 inch 6 4 mm steel cubes towards the enemy The cubes were embedded in 5 pounds 2 3 kg of Composition B explosive It was too large to be a practical infantry weapon and was relatively ineffective with a maximum effective range of only 20 to 30 yards about 20 to 30 meters 1 Around 1952 Norman MacLeod at his company the Calord Corporation began working on a small directional mine for use by infantry It is not clear if the United States Picatinny Arsenal took the concept from the Canadian weapon and asked Norman MacLeod to develop it or if he developed the design independently and presented it to them MacLeod designed a weapon called the T 48 broadly similar to the final M18A1 it lacked a number of the design details that made the M18A1 effective Through Picatinny the United States Army accepted the weapon into service as the M18 Claymore and approximately 10 000 were produced It was used in small numbers in Vietnam from around 1961 It was not until the improved M18A1 was developed that the Claymore became a widely used weapon The M18 was 9 25 inch 235 mm long and 3 27 inch 83 mm high held in a plastic case with three folding spike legs on the bottom An electrical blasting cap for triggering the mine was inserted through a small hole in the side Internally the mine consisted of a layer of 12 ounce 340 g of C 3 explosive the forerunner of C 4 explosive in front of which was laid an array of 0 25 inch 6 4 mm steel cubes In total the mine weighed about 2 43 pound 1 10 kg and could be fitted with an optional peep sight for aiming 6 It lacked the later version s iconic FRONT TOWARD ENEMY marking The mine was planted in the ground using its three sharp legs and aimed in the direction of enemy approach at that point it was fitted with an electrical blasting cap The mine was triggered from a safe position preferably to the side and rear The mine was barely more than a prototype and was not considered a reliable casualty producer like the Phoenix it had an effective range of only 90 feet 27 m 1 MacLeod applied for a patent for the mine on 18 January 1956 and was granted it in February 1961 7 The patent was later the subject of a civil court case between MacLeod the Army and Aerojet which further developed the Claymore design MacLeod s case collapsed when photographs of the German Trenchmine prototype were produced as evidence of prior art 1 Throner Kennedy Bledsoe and Kincheloe at Aerojet Edit The original M18 Claymore mine The detonator is inserted into the side In 1954 Picatinny Arsenal issued a request for proposals RFP to improve the M18 as a more effective weapon At Aerojet in the early 1950s Guy C Throner had independently come up with a design for a Claymore like mine He worked with Don Kennedy and the two men submitted a 30 page proposal in response to Picatinny s RFP They were awarded a 375 000 development contract to improve the Claymore design The Picatinny criteria for the weapon were as follows It must weigh less than 3 5 pounds 1 6 kilograms It must throw enough fragments so that at a range of 55 yards 50 m it achieves a 100 percent strike rate on a 1 3 square feet 0 12 m2 target man sized The fragment area must not be more than 8 feet 2 4 m high and no more than 60 degrees wide Fragments must have a velocity of 4 000 feet 1 200 m per second providing 58 foot pounds 79 joules of kinetic energy delivered to the target The requirement for kinetic energy was based on the fact that 58 foot pounds is required to deliver a potentially lethal injury 8 Given the requirements of weight and fragment density approximately 700 fragments were needed with the ability to aim the mine with an accuracy of around two feet 0 61 m at the center of the target zone The team at Aerojet were given access to all previous research into directional mines including the M18 and the Phoenix as well as German research Dr John Bledsoe led the initial project 1 The original M18 mine fell far short of Picatinny s requirements One of the first improvements was to replace the steel cubes with 7 32 inch 5 6 mm hardened 52100 alloy ball bearings These performed poorly for two reasons Firstly the hardened steel balls spalled into fragments when hit by the shock of the explosion the fragments were neither aerodynamic enough nor large enough to perform effectively Secondly the blast leaked between the balls reducing their velocity 1 A second problem was the curvature of the mine This was determined experimentally by Bledsoe through a large number of test firings After Bledsoe left the project to work at the Rheem corporation William Kincheloe another engineer came onto the Claymore project 1 Kincheloe immediately suggested using softer 1 8 inch 3 2 mm steel gingle balls which were used in the foundry process They did not spall from the shock of the explosive but deformed into a useful aerodynamic shape similar to a 22 rimfire projectile Using a homemade chronograph the engineers clocked the balls at 3 775 feet per second 1 151 m s The second change was to use a poured plastic matrix to briefly contain the blast from the explosive so that more of the blast energy was converted into projectile velocity After a number of experiments the engineers settled on Devcon S steel filled epoxy to hold the balls in place With this change the velocity improved to 3 995 feet per second 1 218 m s 1 Technical challenges to overcome included developing a case to contain the corrosive C 3 explosive that would be durable enough to withstand months of field handling in wide temperature ranges Using dyes to test various plastics for leaks they found a suitable plastic called Durex 1661 which could be easily molded into a case 1 A US Marine places a Claymore mine By the spring of 1956 Aerojet had a near final design It was awarded a pre production contract for 1 000 M18A1 Claymores designated T 48E1 during testing The initial versions of the mine used two pairs of wire legs produced from number 9 3 mm wire Later when production was ramped up the design was changed to flat steel scissor folding type legs 1 Early pre production mines were triggered using a battery pack which had been used with the M18 This was found to be undesirable for a number of reasons Bill Kincheloe came up with the idea of using a Tiny Tim toggle generator of the type used with a number of Navy rockets 1 Originally an aluminum box was used to hold the generator Later a Philadelphia company Molded Plastic Insulation Company took over the manufacture of the firing device for the first large scale production run producing a plastic device 1 The sighting for the device was originally intended to be a cheap pentaprism device which would allow the user to look down from above and see the sight picture After locating a suitably low cost device the engineers found that fumes from either the C 3 explosive or the cement used to glue the sight to the top of the mine corroded the plastic mirrors rendering them unusable They adopted simple peep sights which were later replaced by a knife blade sight Testing concluded that the mine was effective out to approximately 110 yards 100 m being capable of hitting 10 of the attacking force At 55 yards 50 m this increased to 30 The development project completed the Aerojet team sent the project back to Picatinny The Arsenal bid it out to various component suppliers In 1960 it was type standardized as the M18A1 It was first used in Vietnam in the spring or early summer 1966 1 Minor modifications were made to the mine during its service A layer of tinfoil was added between the fragmentation matrix and the explosive This slightly improves the fragment velocity and protects the steel fragments from the corrosive explosive A ferrite choke was added to prevent RF signals and lightning from triggering the mine 1 Variants EditM68 Inert Training Kit Edit The M68 kit is designed to familiarize personnel with the placement and arming of a real M18 directional mine It comes with all the components of a real Claymore kit packed in an M7 bandolier The light blue or black plastic M33 Inert Anti Personnel Mine is the training and practice version of the M18A1 Claymore Some inert mines were green with a light blue band It does not contain an explosive or pyrotechnic filler of any kind It is packed in a Claymore bag with inert M10 simulated detonator cap wire an M57 clacker firing control and an M40 circuit test kit Mini Multi Purpose Infantry Munition Edit In early 2015 the U S Army began testing a smaller version of the Claymore called the Mini Multi Purpose Infantry Munition M MPIMS It weighs 2 lb 0 91 kg and has a 50 m 160 ft effective range similar to the full size Claymore At its optimized range of 30 m 98 ft the fragmentation zone is 23 m 75 ft wide and 2 m 6 6 ft high with a minimum of five hits per 1 m2 11 sq ft It has the surface space of an average smartphone and includes a Picatinny rail for camera laser or other attachments The M MPIMS is designed to be more controllable than the Claymore with less collateral damage using an insensitive munitions explosive that is poured rather than packed for more uniform distribution results in more consistent blast pattern Rear safety distance has been decreased to 15 m 49 ft and shelf life has been increased to 25 years 9 International directional fragmentation AP mines EditPADMINE is an anti personnel directional fragmentation mine produced by the United Kingdom similar to the Claymore in cosmetic design with two swivelling legs inserted into soft ground Its lethality out to 50 meters arrives in the form of 650 steel balls and it is activated by remote control or trip wire The M18 directional fragmentation anti personnel mine developed by Cardoen of Chile contains 626 grams of explosives surrounded by 607 AP fragmentation units providing a 60 degree arc of fire with a 50 250 meters lethal range Italy produces the DAF M6 and DAF M7 directional fragmentation mines weighing 18 and 10 kilograms respectively with trip wire or remote control detonation Their appearance is similar to the Claymore mine 10 better source needed National copies Edit A Chinese Type 66 claymore mineA number of licensed and unlicensed copies of the mine have been produced Canada C19 Defensive and Support Mine Chile M18 China Type 66 Finland Viuhkapanos fi Fan Charge VP 88 heavier VP 84 and VP 2010 Hungary IHR 60 Italy VS DAFM 7 11 Pakistan P5 Mk1 Philippines M18A2 12 Poland M18 Claymore Russia MON 50 Saudi Arabia M18A M18A1 13 Serbia MRUD Mina Rasprskavajuceg Usmerenog Dejstva South Africa Shrapnel mine No 2 Mini MS 803 mine South Korea K440 slightly smaller than the Claymore with 770 fragments KM18A1 Sweden FFV 013 14 Forsvarsladdning 21 LI 12 Truppmina 12 15 Turkey M18 AP Mine United States Arms Tech MM 1 Minimore a smaller variant conceived for Special Forces use Vietnam MDH C40See also EditFougasse weapon List of individual weapons of the U S Armed Forces Punt gun similar killing effects at a wide area References Edit a b c d e f g h i j k l m n o p q Larry Grupp May 1993 Claymore mines Their History and Development Paladin Press ISBN 0 87364 715 7 Operator s and Unit Maintenance Manual for Landmines TM 9 1345 203 12 PDF Washington D C Headquarters Department of the Army October 1995 pp 1 8 Archived from the original PDF on May 21 2015 Retrieved May 19 2015 via mines duvernois org Boffey Daniel 13 August 2023 You don t survive that Ukraine sappers dice with death to clear Russian mines The Guardian FM 3 21 75 Ch 14 Pike John M18 Claymore www globalsecurity org Archived from the original on 5 April 2018 Retrieved 4 April 2018 M18 at ORDATA Patent 2 972 949 ANTI PERSONNEL FRAGMENTATION WEAPON Stephen G Floroff Engineering the Nonlethal Artillery Projectile PDF Archived from the original PDF on January 27 2007 RPGs grenades and dummies 9 soldier tested gadgets Archived 2015 04 08 at the Wayback Machine Militarytimes com 6 April 2015 Army Air Force Navy Chinese Defense Blog Archived from the original on 2016 10 22 Retrieved 2019 07 22 VS DAFM 7 Italian anti personnel Claymore mine Technical specs at James Madison University Mine Action Information Center Archived from the original on 2007 10 17 Anti Personnel Mines Floro International Corporation Archived from the original on 2011 07 19 Retrieved 2011 01 10 Kingdom of Saudi Arabia KSA Ammunition for the Royal Saudi Land Forces RSLF The Official Home of the Defense Security Cooperation Agency webcache googleusercontent com Archived from the original on 18 January 2018 Retrieved 4 April 2018 FFV 013 Swedish anti personnel Claymore mine Technical specs at James Madison University Mine Action Information Center Archived from the original on 2007 10 17 LI 12 Truppmina 12 Swedish anti personnel Claymore mine Technical specs at James Madison University Mine Action Information Center Archived from the original on 2007 10 17 External links Edit Wikimedia Commons has media related to M18A1 Claymore Antipersonnel Mine International Coalition to Ban Landmines Countries using Claymore type mines PDF FM 23 23 ANTIPERSONNEL MINE M18A1 AND M18 CLAYMORE Field Manual GlobalSecurity org Retrieved from https en wikipedia org w index php title Claymore mine amp oldid 1170561432, wikipedia, wiki, book, books, library,

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