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Fat Man

"Fat Man" (also known as Mark III) was the codename for the type of nuclear bomb the United States detonated over the Japanese city of Nagasaki on 9 August 1945. It was the second of the only two nuclear weapons ever used in warfare, the first being Little Boy, and its detonation marked the third nuclear explosion in history. It was built by scientists and engineers at Los Alamos Laboratory using plutonium from the Hanford Site, and was dropped from the Boeing B-29 Superfortress Bockscar piloted by Major Charles Sweeney.

Fat Man
Replica of the original Fat Man bomb
TypeNuclear weapon
Place of originUnited States
Production history
DesignerLos Alamos Laboratory
Produced1945–1949
No. built120
Specifications
Mass10,300 pounds (4,670 kg)
Length128 inches (3.3 m)
Diameter60 inches (1.5 m)

FillingPlutonium
Filling weight6.4 kg
Blast yield21 kt (88 TJ)

The name Fat Man refers to the early design of the bomb because it had a wide, round shape. Fat Man was an implosion-type nuclear weapon with a solid plutonium core. The first of that type to be detonated was the Gadget in the Trinity nuclear test less than a month earlier on 16 July at the Alamogordo Bombing and Gunnery Range in New Mexico. Two more were detonated during the Operation Crossroads nuclear tests at Bikini Atoll in 1946, and some 120 were produced between 1947 and 1949, when it was superseded by the Mark 4 nuclear bomb. The Fat Man was retired in 1950.

Early decisions

Robert Oppenheimer held conferences in Chicago in June 1942, prior to the Army taking over wartime atomic research, and in Berkeley, California, in July, at which various engineers and physicists discussed nuclear bomb design issues. They chose a gun-type design in which two sub-critical masses would be brought together by firing a "bullet" into a "target".[1] Richard C. Tolman suggested an implosion-type nuclear weapon, but the proposal attracted little interest.[2]

The feasibility of a plutonium bomb was questioned in 1942. Wallace Akers, the director of the British "Tube Alloys" project, told James Bryant Conant on 14 November that James Chadwick had "concluded that plutonium might not be a practical fissionable material for weapons because of impurities".[3] Conant consulted Ernest Lawrence and Arthur Compton, who acknowledged that their scientists at Berkeley and Chicago, respectively, knew about the problem, but they could offer no ready solution. Conant informed Manhattan Project director Brigadier General Leslie R. Groves Jr., who in turn assembled a special committee consisting of Lawrence, Compton, Oppenheimer, and McMillan to examine the issue. The committee concluded that any problems could be overcome simply by requiring higher purity.[4]

Oppenheimer reviewed his options in early 1943 and gave priority to the gun-type weapon,[2] but he created the E-5 Group at the Los Alamos Laboratory under Seth Neddermeyer to investigate implosion as a hedge against the threat of pre-detonation. Implosion-type bombs were determined to be significantly more efficient in terms of explosive yield per unit mass of fissile material in the bomb, because compressed fissile materials react more rapidly and therefore more completely. Nonetheless, it was decided that the plutonium gun would receive the bulk of the research effort, since it was the project with the least uncertainty involved. It was assumed that the uranium gun-type bomb could be easily adapted from it.[5]

Naming

The gun-type and implosion-type designs were codenamed "Thin Man" and "Fat Man", respectively. These code names were created by Robert Serber, a former student of Oppenheimer's who worked on the Manhattan Project. He chose them based on their design shapes; the Thin Man was a very long device, and the name came from the Dashiell Hammett detective novel The Thin Man and series of movies. The Fat Man was round and fat and was named after Sydney Greenstreet's character in Hammett's The Maltese Falcon. Little Boy came last as a variation of Thin Man.[6] The Little Boy uranium gun-type design came later and was named only to contrast with the Thin Man.[6] Los Alamos's Thin Man and Fat Man code names were adopted by the United States Army Air Forces (USAAF). A cover story was devised that Silverplate was about modifying a Pullman car for use by President Franklin Roosevelt (Thin Man) and United Kingdom Prime Minister Winston Churchill (Fat Man) on a secret tour of the United States.[7] Air Forces personnel used the code names over the phone to make it sound as though they were modifying a plane for Roosevelt and Churchill.[8]

Development

Neddermeyer discarded Serber and Tolman's initial concept of implosion as assembling a series of pieces in favor of one in which a hollow sphere was imploded by an explosive shell. He was assisted in this work by Hugh Bradner, Charles Critchfield, and John Streib. L. T. E. Thompson was brought in as a consultant, and discussed the problem with Neddermeyer in June 1943. Thompson was skeptical that an implosion could be made sufficiently symmetric. Oppenheimer arranged for Neddermeyer and Edwin McMillan to visit the National Defense Research Committee's Explosives Research Laboratory near the laboratories of the Bureau of Mines in Bruceton, Pennsylvania (a Pittsburgh suburb), where they spoke to George Kistiakowsky and his team. But Neddermeyer's efforts in July and August at imploding tubes to produce cylinders tended to produce objects that resembled rocks. Neddermeyer was the only person who believed that implosion was practical, and only his enthusiasm kept the project alive.[9]

 
Replica mockup of a Fat Man displayed in the National Museum of the United States Air Force, beside the Bockscar B-29 that dropped the original device – black liquid asphalt sealant was sprayed over the original bomb casing's seams, simulated on the mockup.

Oppenheimer brought John von Neumann to Los Alamos in September 1943 to take a fresh look at implosion. After reviewing Neddermeyer's studies, and discussing the matter with Edward Teller, von Neumann suggested the use of high explosives in shaped charges to implode a sphere, which he showed could not only result in a faster assembly of fissile material than was possible with the gun method, but greatly reduce the amount of material required, because of the resulting higher density.[10] The idea that, under such pressures, the plutonium metal itself would be compressed came from Teller, whose knowledge of how dense metals behaved under heavy pressure was influenced by his pre-war theoretical studies of the Earth's core with George Gamow.[11] The prospect of more-efficient nuclear weapons impressed Oppenheimer, Teller, and Hans Bethe, but they decided that an expert on explosives would be required. Kistiakowsky's name was immediately suggested, and Kistiakowsky was brought into the project as a consultant in October 1943.[10]

The implosion project remained a backup until April 1944, when experiments by Emilio G. Segrè and his P-5 Group at Los Alamos on the newly reactor-produced plutonium from the X-10 Graphite Reactor at Oak Ridge and the B Reactor at the Hanford site showed that it contained impurities in the form of the isotope plutonium-240. This has a far higher spontaneous fission rate and radioactivity than plutonium-239. The cyclotron-produced isotopes, on which the original measurements had been made, held much lower traces of plutonium-240. Its inclusion in reactor-bred plutonium appeared unavoidable. This meant that the spontaneous fission rate of the reactor plutonium was so high that it would be highly likely that it would predetonate and blow itself apart during the initial formation of a critical mass.[12] The distance required to accelerate the plutonium to speeds where predetonation would be less likely would need a gun barrel too long for any existing or planned bomber. The only way to use plutonium in a workable bomb was therefore implosion.[13]

 
Small-scale slow-motion cut-away of shaped-charge implosion device.

The impracticability of a gun-type bomb using plutonium was agreed at a meeting in Los Alamos on 17 July 1944. All gun-type work in the Manhattan Project was re-directed towards the Little Boy, enriched-uranium gun design, and the Los Alamos Laboratory was reorganized, with almost all of the research focused on the problems of implosion for the Fat Man bomb.[13] The idea of using shaped charges as three-dimensional explosive lenses came from James L. Tuck, and was developed by von Neumann.[14] A key component needed for the success of the bomb was for there to be absolute precision in all of the plates moving inward at the same time.[15] To overcome the difficulty of synchronizing multiple detonations, Luis Alvarez and Lawrence Johnston invented exploding-bridgewire detonators to replace the less precise primacord detonation system.[14] Robert Christy is credited with doing the calculations that showed how a solid subcritical sphere of plutonium could be compressed to a critical state, greatly simplifying the task, since earlier efforts had attempted the more-difficult compression of a hollow spherical shell.[16] After Christy's report, the solid-plutonium core weapon was referred to as the "Christy Gadget".[17]

The task of the metallurgists was to determine how to cast plutonium into a sphere. The difficulties became apparent when attempts to measure the density of plutonium gave inconsistent results. At first contamination was believed to be the cause, but it was soon determined that there were multiple allotropes of plutonium.[18] The brittle α phase that exists at room temperature changes to the plastic β phase at higher temperatures. Attention then shifted to the even more malleable δ phase that normally exists in the 300–450 °C (570–840 °F) range. It was found that this was stable at room temperature when alloyed with aluminum, but aluminum emits neutrons when bombarded with alpha particles, which would exacerbate the pre-ignition problem. The metallurgists then hit upon a plutonium–gallium alloy, which stabilized the δ phase and could be hot pressed into the desired spherical shape. As plutonium was found to corrode readily, the sphere was coated with nickel.[19]

 
A pumpkin bomb (Fat Man test unit) being raised from the pit into the bomb bay of a B-29 for bombing practice during the weeks before the attack on Nagasaki

The size of the bomb was constrained by the available aircraft, which were investigated for suitability by Norman Foster Ramsey. The only Allied aircraft considered capable of carrying the Fat Man without major modification were the British Avro Lancaster and the American Boeing B-29 Superfortress.[20][21][22] At the time, the B-29 represented the epitome of bomber technology with significant advantages in Maximum takeoff weight, range, speed, flight ceiling, and survivability. Without the availability of the B-29, dropping the bomb would likely have been impossible. However, this still constrained the bomb to a maximum length of 11 feet (3.4 m), width of 5 feet (1.5 m) and weight of 20,000 pounds (9,100 kg). Removing the bomb rails allowed a maximum width of 5.5 feet (1.7 m).[21]

Drop tests began in March 1944, and resulted in modifications to the Silverplate aircraft due to the weight of the bomb.[23] High-speed photographs revealed that the tail fins folded under the pressure, resulting in an erratic descent. Various combinations of stabilizer boxes and fins were tested on the Fat Man shape to eliminate its persistent wobble until an arrangement dubbed a "California Parachute" was approved, a cubical open-rear tail box outer surface with eight radial fins inside of it, four angled at 45 degrees and four perpendicular to the line of fall holding the outer square-fin box to the bomb's rear end.[20] In drop tests in early weeks, the Fat Man missed its target by an average of 1,857 feet (566 m), but this was halved by June as the bombardiers became more proficient with it.[24]

The early Y-1222 model Fat Man was assembled with some 1,500 bolts.[25][26] This was superseded by the Y-1291 design in December 1944. This redesign work was substantial, and only the Y-1222 tail design was retained.[26] Later versions included the Y-1560, which had 72 detonators; the Y-1561, which had 32; and the Y-1562, which had 132. There were also the Y-1563 and Y-1564, which were practice bombs with no detonators at all.[27] The final wartime Y-1561 design was assembled with just 90 bolts.[25] On 16 July 1945, a Y-1561 model Fat Man, known as the Gadget, was detonated in a test explosion at a remote site in New Mexico, known as the "Trinity" test. It gave a yield of about 25 kilotonnes (100 TJ).[28] Some minor changes were made to the design as a result of the Trinity test.[29] Philip Morrison recalled that "There were some changes of importance... The fundamental thing was, of course, very much the same."[30]

Interior

The bomb was 128.375 inches (3.2607 m) long and 60.25 inches (153.0 cm) in diameter. It weighed 10,265 pounds (4,656 kg).[31]

Assembly

 
Fat Man's detonation method
 
Fat Man's "physics package" nuclear device about to be encased
 
Fat Man on its transport carriage, with liquid asphalt sealant applied over the casing's seams
 
Preserved Tinian "bomb pit#2", where Fat Man was loaded aboard Bockscar

The plutonium pit[25] was 3.62 inches (92 mm) in diameter and contained an "Urchin" modulated neutron initiator that was 0.8 inches (20 mm) in diameter. The depleted uranium tamper was an 8.75-inch-diameter (222 mm) sphere, surrounded by a 0.125-inch-thick (3.2 mm) shell of boron-impregnated plastic. The plastic shell had a 5-inch-diameter (130 mm) cylindrical hole running through it, like the hole in a cored apple, in order to allow insertion of the pit as late as possible. The missing tamper cylinder containing the pit could be slipped in through a hole in the surrounding 18.5-inch-diameter (470 mm) aluminum pusher.[32] The pit was warm to the touch, emitting 2.4 W/kg-Pu, about 15 W for the 6.19-kilogram (13.6 lb) core.[33]

The explosion symmetrically compressed the plutonium to twice its normal density before the "Urchin" added free neutrons to initiate a fission chain reaction.[34]

  •   An exploding-bridgewire detonator simultaneously starts a detonation wave in each of the 32 tapered high-explosive columns (positioned around the explosive material at the face centers of a truncated icosahedron,[35] a geometry popularly known from the pattern of common soccer balls).
  •   The detonation wave (arrows) is initially convex in the...
  •   ...faster explosive (Composition B: 60% RDX, 40% TNT).[35] The wavefronts become concave in the...
  •   ...slower explosive (Baratol: 70% barium nitrate, 30% TNT).[35] The 32 waves then merge into a single spherical implosive shock-wave which hits the...
  •   ...inner charges' faster explosive (Composition B).[32]
  •   The medium-density aluminum "pusher" transfers the imploding shock-wave from the low-density explosive to the high-density uranium, minimizing undesirable turbulence.[36] The shock-wave then compresses the inner components, passing through a...
  •   ...boron-plastic shell intended to prevent pre-detonation of the bomb by stray neutrons.[36] The shock-wave reaches the center of the bomb, where the...
  •   ...beryllium210Po "Urchin" is crushed,[37] pushing the two metals together and thereby releasing a burst of neutrons into the compressed...
  •   ...pit of the nickel-plated delta-phase alloy of 239Pu240Pugallium (96%–1%–3% by molarity).[38][39] A fission chain reaction then begins. The tendency of the fissioning pit to blow itself apart prematurely is reduced by the inward momentum of the...
  •   ...natural-uranium "tamper" (inertial confinement). The tamper also reflects neutrons back into the pit, accelerating the chain reaction. If and when sufficient fast neutrons are produced, the tamper itself undergoes fission, accounting for up to 30% of the weapon's yield.[40]

The result was the fission of about 1 kilogram (2.2 lb) of the 6.19 kilograms (13.6 lb) of plutonium in the pit, i.e. of about 16% of the fissile material present.[41][42] The detonation released the energy equivalent to the detonation of 21 kilotons of TNT or 88 terajoules.[43] About 30% of the yield came from fission of the uranium tamper.[40]

Bombing of Nagasaki

Bomb assembly

 
Mushroom cloud after Fat Man exploded over Nagasaki on 9 August 1945

The first plutonium core was transported with its polonium-beryllium modulated neutron initiator in the custody of Project Alberta courier Raemer Schreiber in a magnesium field carrying case designed for the purpose by Philip Morrison. Magnesium was chosen because it does not act as a tamper.[34] It left Kirtland Army Air Field on a C-54 transport aircraft of the 509th Composite Group's 320th Troop Carrier Squadron on 26 July and arrived at North Field on Tinian on 28 July. Three Fat Man high-explosive pre-assemblies (designated F31, F32, and F33) were picked up at Kirtland on 28 July by three B-29s: Luke the Spook and Laggin' Dragon from the 509th Composite Group's 393d Bombardment Squadron, and another from the 216th Army Air Forces Base Unit. The cores were transported to North Field, arriving on 2 August, when F31 was partly disassembled in order to check all its components. F33 was expended near Tinian during a final rehearsal on 8 August. F32 presumably would have been used for a third attack or its rehearsal.[44]

On 7 August, the day after the bombing of Hiroshima, Rear Admiral William R. Purnell, Commodore William S. Parsons, Tibbets, General Carl Spaatz and Major General Curtis LeMay met on Guam to discuss what should be done next.[45] Since there was no indication of Japan surrendering,[46] they decided to proceed with their orders and drop another bomb. Parsons said that Project Alberta would have it ready by 11 August, but Tibbets pointed to weather reports indicating poor flying conditions on that day due to a storm and asked if the bomb could be made ready by 9 August. Parsons agreed to try to do so.[45][47]

Fat Man F31 was assembled on Tinian by Project Alberta personnel,[44] and the physics package was fully assembled and wired. It was placed inside its ellipsoidal aerodynamic bombshell and wheeled out, where it was signed by nearly 60 people, including Purnell, Brigadier General Thomas F. Farrell, and Parsons.[48] It was then wheeled to the bomb bay of the B-29 Superfortress named Bockscar after the plane's command pilot Captain Frederick C. Bock,[49] who flew The Great Artiste with his crew on the mission. Bockscar was flown by Major Charles W. Sweeney and his crew, with Commander Frederick L. Ashworth from Project Alberta as the weaponeer in charge of the bomb.[50]

Bombing of Nagasaki

 
Bockscar in a post-war photo

Bockscar lifted off at 03:47 on the morning of 9 August 1945, with Kokura as the primary target and Nagasaki the secondary target. The weapon was already armed, but with the green electrical safety plugs still engaged. Ashworth changed them to red after ten minutes so that Sweeney could climb to 17,000 feet (5,200 m) in order to get above storm clouds.[51] During the pre-flight inspection of Bockscar, the flight engineer notified Sweeney that an inoperative fuel transfer pump made it impossible to use 640 US gallons (2,400 L) of fuel carried in a reserve tank. This fuel would still have to be carried all the way to Japan and back, consuming still more fuel. Replacing the pump would take hours; moving the Fat Man to another aircraft might take just as long and was dangerous as well, as the bomb was live. Colonel Paul Tibbets and Sweeney therefore elected to have Bockscar continue the mission.[52]

 
Effects of the Fat Man's detonation on Nagasaki

The target for the bomb was the city of Kokura, but it was found to be obscured by clouds and drifting smoke from fires started by a major firebombing raid by 224 B-29s on nearby Yahata the previous day. This covered 70% of the area over Kokura, obscuring the aiming point. Three bomb runs were made over the next 50 minutes, burning fuel and repeatedly exposing the aircraft to the heavy defenses of Yahata, but the bombardier was unable to drop visually. By the time of the third bomb run, Japanese anti-aircraft fire was getting close; Second Lieutenant Jacob Beser was monitoring Japanese communications, and he reported activity on the Japanese fighter direction radio bands.[53]

Sweeney then proceeded to the alternative target of Nagasaki. It was obscured by clouds, as well, and Ashworth ordered Sweeney to make a radar approach. At the last minute, however, bombardier[51] Captain Kermit K. Beahan[50] found a hole in the clouds. The Fat Man was dropped and exploded at 11:02 local time, following a 43-second free-fall, at an altitude of about 1,650 feet (500 m).[51] There was poor visibility due to cloud cover and the bomb missed its intended detonation point by almost two miles, so the damage was somewhat less extensive than that in Hiroshima.

An estimated 35,000–40,000 people were killed outright by the bombing at Nagasaki. A total of 60,000–80,000 fatalities resulted, including from long-term health effects, the strongest of which was leukemia with an attributable risk of 46% for bomb victims.[54] Others died later from related blast and burn injuries, and hundreds more from radiation illnesses from exposure to the bomb's initial radiation.[55] Most of the direct deaths and injuries were among munitions or industrial workers.[56]

Mitsubishi's industrial production in the city was also severed by the attack; the dockyard would have produced at 80 percent of its full capacity within three to four months, the steelworks would have required a year to get back to substantial production, the electric works would have resumed some production within two months and been back at capacity within six months, and the arms plant would have required 15 months to return to 60 to 70 percent of former capacity. The Mitsubishi-Urakami Ordnance Works, which manufactured the Type 91 torpedoes released in the attack on Pearl Harbor, was destroyed in the blast.[56][57]

Post-war development

 
Espionage information procured by Klaus Fuchs, Theodore Hall, and David Greenglass led to the first Soviet device "RDS–1" (above), which closely resembled Fat Man, even in its external shape.

After the war, two Y-1561 Fat Man bombs were used in the Operation "Crossroads" nuclear tests at Bikini Atoll in the Pacific. The first was known as Gilda after Rita Hayworth's character in the 1946 movie Gilda, and it was dropped by the B-29 Dave's Dream; it missed its aim point by 710 yards (650 m). The second bomb was nicknamed Helen of Bikini and was placed without its tail fin assembly in a steel caisson made from a submarine's conning tower; it was detonated 90 feet (27 m) beneath the landing craft USS LSM-60. The two weapons yielded about 23 kilotonnes (96 TJ) each.[58]

The Los Alamos Laboratory and the Army Air Forces had already commenced work on improving the design. The North American B-45 Tornado, Convair XB-46, Martin XB-48, and Boeing B-47 Stratojet bombers had bomb bays sized to carry the Grand Slam, which was much longer but not as wide as the Fat Man. The only American bombers that could carry the Fat Man were the B-29 and the Convair B-36. In November 1945, the Army Air Forces asked Los Alamos for 200 Fat Man bombs, but there were only two sets of plutonium cores and high-explosive assemblies at the time. The Army Air Forces wanted improvements to the design to make it easier to manufacture, assemble, handle, transport, and stockpile. The wartime Project W-47 was continued, and drop tests resumed in January 1946.[59]

The Mark III Mod 0 Fat Man was ordered into production in mid-1946. High explosives were manufactured by the Salt Wells Pilot Plant, which had been established by the Manhattan Project as part of Project Camel, and a new plant was established at the Iowa Army Ammunition Plant. Mechanical components were made or procured by the Rock Island Arsenal; electrical and mechanical components for about 50 bombs were stockpiled at Kirtland Army Air Field by August 1946, but only nine plutonium cores were available. Production of the Mod 0 ended in December 1948, by which time there were still only 53 cores available. It was replaced by improved versions known as Mods 1 and 2 which contained a number of minor changes, the most important of which was that they did not charge the X-Unit firing system's capacitors until released from the aircraft. The Mod 0s were withdrawn from service between March and July 1949, and by October they had all been rebuilt as Mods 1 and 2.[60] Some 120 Mark III Fat Man units were added to the stockpile between 1947 and 1949,[61] when it was superseded by the Mark 4 nuclear bomb.[62] The Mark III Fat Man was retired in 1950.[61][63]

A nuclear strike would have been a formidable undertaking in the post-war 1940s due to the limitations of the Mark III Fat Man. The lead-acid batteries which powered the fuzing system remained charged for only 36 hours, after which they needed to be recharged. To do this meant disassembling the bomb, and recharging took 72 hours. The batteries had to be removed in any case after nine days or they corroded. The plutonium core could not be left in for much longer, because its heat damaged the high explosives. Replacing the core also required the bomb to be completely disassembled and reassembled. This required about 40 to 50 men and took between 56 and 72 hours, depending on the skill of the bomb assembly team, and the Armed Forces Special Weapons Project had only three teams in June 1948. The only aircraft capable of carrying the bomb were Silverplate B-29s, and the only group equipped with them was the 509th Bombardment Group at Walker Air Force Base in Roswell, New Mexico. They would first have to fly to Sandia Base to collect the bombs, and then to an overseas base from which a strike could be mounted.[64] In March 1948, during the Berlin Blockade, all the assembly teams were in Eniwetok for the Operation Sandstone test, and the military teams were not yet qualified to assemble atomic weapons.[65]

In June 1948, General Omar Bradley, Major General Alfred Gruenther and Brigadier General Anthony McAuliffe visited Sandia and Los Alamos to show them the "special requirements" of atomic weapons. Gruenther asked Brigadier General Kenneth Nichols: "When are you going to show us the real thing? Surely this laboratory monstrosity is not the only type of atomic bomb we have in stockpile?"[66] Nichols told him that better weapons would soon become available. After the "astonishingly good" results of Operation Sandstone were available, stockpiling of improved weapons began.[66]

The Soviet Union's first nuclear weapon was based closely on Fat Man's design thanks to spies Klaus Fuchs, Theodore Hall, and David Greenglass, who provided them with secret information concerning the Manhattan Project and Fat Man. It was detonated on 29 August 1949 as part of Operation "First Lightning".[67][68][69]

Notes

  1. ^ Hoddeson et al. 1993, pp. 42–44.
  2. ^ a b Hoddeson et al. 1993, p. 55.
  3. ^ Nichols 1987, p. 64.
  4. ^ Nichols 1987, pp. 64–65.
  5. ^ Hoddeson et al. 1993, p. 87.
  6. ^ a b Serber & Crease 1998, p. 104.
  7. ^ Bowen 1959, p. 96.
  8. ^ Rhodes 1986, p. 481.
  9. ^ Hoddeson et al. 1993, pp. 86–90.
  10. ^ a b Hoddeson et al. 1993, pp. 130–133.
  11. ^ Teller 2001, pp. 174–176.
  12. ^ Hoddeson et al. 1993, p. 228.
  13. ^ a b Hoddeson et al. 1993, pp. 240–244.
  14. ^ a b Hoddeson et al. 1993, p. 163.
  15. ^ Coster-Mullen 2012, p. 110.
  16. ^ Hoddeson et al. 1993, pp. 270–271.
  17. ^ Hoddeson et al. 1993, pp. 293, 307–308.
  18. ^ Hewlett & Anderson 1962, pp. 244–245.
  19. ^ Baker, Hecker & Harbur 1983, pp. 144–145.
  20. ^ a b Hoddeson et al. 1993, pp. 380–383.
  21. ^ a b Hansen 1995, pp. 119–120.
  22. ^ Groves 1962, p. 254.
  23. ^ Campbell 2005, pp. 8–10.
  24. ^ Hansen 1995, p. 131.
  25. ^ a b c Coster-Mullen 2012, p. 52.
  26. ^ a b Hansen 1995, p. 121.
  27. ^ Hansen 1995, p. 127.
  28. ^ Selby, Hugh D.; Hanson, Susan K.; Meininger, Daniel; Oldham, Warren J.; Kinman, William S.; Miller, Jeffrey L.; Reilly, Sean D.; Wende, Allison M.; Berger, Jennifer L.; Inglis, Jeremy; Pollington, Anthony D.; Waidmann, Christopher R.; Meade, Roger A.; Buescher, Kevin L.; Gattiker, James R.; Vander Wiel, Scott A.; Marcy, Peter W. (11 October 2021). "A New Yield Assessment for the Trinity Nuclear Test, 75 Years Later". Nuclear Technology. 207 (sup1): 321–325. doi:10.1080/00295450.2021.1932176. ISSN 0029-5450. S2CID 244134027.
  29. ^ Hoddeson et al. 1993, p. 377.
  30. ^ Coster-Mullen 2012, p. 53.
  31. ^ Coster-Mullen 2012, p. 47.
  32. ^ a b Coster-Mullen 2012, p. 186.
  33. ^ Coster-Mullen 2012, p. 49.
  34. ^ a b Coster-Mullen 2012, p. 45.
  35. ^ a b c Coster-Mullen 2012, p. 41.
  36. ^ a b Hansen 1995, pp. 122–123.
  37. ^ Coster-Mullen 2012, p. 48.
  38. ^ Coster-Mullen 2012, p. 57.
  39. ^ Sublette, Carey (3 July 2007). "Section 8.0 The First Nuclear Weapons". Nuclear Weapons FAQ. Retrieved 29 August 2013.
  40. ^ a b Wellerstein, Alex (10 November 2014). "The Fat Man's Uranium". Restricted Data. Retrieved 9 December 2020.
  41. ^ Coster-Mullen 2012, p. 46.
  42. ^ Wellerstein, Alex (23 December 2013). "Kilotons per kilogram". Restricted Data. Retrieved 9 December 2020.
  43. ^ Malik 1985, p. 25.
  44. ^ a b Campbell 2005, pp. 38–40.
  45. ^ a b Russ 1990, pp. 64–65.
  46. ^ Frank 1999, pp. 283–284.
  47. ^ Groves 1962, p. 342.
  48. ^ Coster-Mullen 2012, p. 67.
  49. ^ "Bockscar … The Forgotten Plane That Dropped The Atomic Bomb « A Little Touch Of History". Awesometalks.wordpress.com. 7 August 2008. Retrieved 31 August 2012.
  50. ^ a b Campbell 2005, p. 32.
  51. ^ a b c Rhodes 1986, p. 740.
  52. ^ Sweeney, Antonucci & Antonucci 1997, pp. 204–205.
  53. ^ Sweeney, Antonucci & Antonucci 1997, pp. 179, 213–215.
  54. ^ Columbia university center for nuclear studies: Hiroshima and Nagasaki: The Long Term Health Effects 23 July 2015 at the Wayback Machine, updated 7/3/2014
  55. ^ Craven & Cate 1953, pp. 723–725.
  56. ^ a b Nuke-Rebuke: Writers & Artists Against Nuclear Energy & Weapons (The Contemporary anthology series). The Spirit That Moves Us Press. 1 May 1984. pp. 22–29.
  57. ^ "United States Strategic Bombing Survey Summary Report (Pacific War) The Effects Of The Atomic Bombs". U.S. Strategic Bombing Survey. p. 24.
  58. ^ Coster-Mullen 2012, pp. 84–85.
  59. ^ Hansen 1995, pp. 137–142.
  60. ^ Hansen 1995, pp. 142–145.
  61. ^ a b Coster-Mullen 2012, p. 87.
  62. ^ Hansen 1995, p. 143.
  63. ^ Hansen 1995, p. 150.
  64. ^ Hansen 1995, pp. 147–149.
  65. ^ Nichols 1987, pp. 260, 264, 265.
  66. ^ a b Nichols 1987, p. 264.
  67. ^ Holmes, Marian Smith (19 April 2009). "Spies Who Spilled Atomic Bomb Secrets". Smithsonian. Retrieved 5 April 2019.
  68. ^ Holloway, David (1993). "Soviet Scientists Speak Out". Bulletin of the Atomic Scientists. 49 (4): 18–19. Bibcode:1993BuAtS..49d..18H. doi:10.1080/00963402.1993.11456340.
  69. ^ Sublette, Carey (3 July 2007). "Section 8.1.1 The Design of Gadget, Fat Man, and "Joe 1" (RDS-1)". Nuclear Weapons FAQ. Retrieved 12 August 2011.

References

  • Baker, Richard D.; Hecker, Siegfried S.; Harbur, Delbert R. (1983). "Plutonium: A Wartime Nightmare but a Metallurgist's Dream" (PDF). Los Alamos Science (Winter/Spring): 142–151. Retrieved 22 November 2010.
  • Bowen, Lee (1959). (PDF). The History of Air Force Participation in the Atomic Energy Program, 1943–1953. Washington, D.C.: U.S. Air Force, Air University Historical Liaison Office. Archived from the original (PDF) on 22 February 2014. Retrieved 28 July 2013.
  • Campbell, Richard H. (2005). The Silverplate Bombers: A History and Registry of the Enola Gay and Other B-29s Configured to Carry Atomic Bombs. Jefferson, North Carolina: McFarland & Company. ISBN 978-0-7864-2139-8. OCLC 58554961.
  • Coster-Mullen, John (2012). Atom Bombs: The Top Secret Inside Story of Little Boy and Fat Man. Waukesha, Wisconsin: J. Coster-Mullen. ASIN B0006S2AJ0. OCLC 298514167.
  • Craven, Wesley; Cate, James, eds. (1953). The Pacific: Matterhorn to Nagasaki. The Army Air Forces in World War II. Chicago: The University of Chicago Press. OCLC 256469807.
  • Groves, Leslie (1962). Now It Can Be Told: The Story of the Manhattan Project. New York: Harper. ISBN 0-306-70738-1. OCLC 537684.
  • Frank, Richard B. (1999). Downfall: The End of the Imperial Japanese Empire. New York: Random House. ISBN 978-0-679-41424-7.
  • Hansen, Chuck (1995). Volume V: US Nuclear Weapons Histories. Swords of Armageddon: US Nuclear Weapons Development since 1945. Sunnyvale, California: Chukelea Publications. ISBN 978-0-9791915-0-3. OCLC 231585284.
  • Hewlett, Richard G.; Anderson, Oscar E. (1962). The New World, 1939–1946 (PDF). University Park: Pennsylvania State University Press. ISBN 978-0-520-07186-5. OCLC 637004643. (PDF) from the original on 27 February 2012. Retrieved 26 March 2013.
  • Hoddeson, Lillian; Henriksen, Paul W.; Meade, Roger A.; Westfall, Catherine L. (1993). Critical Assembly: A Technical History of Los Alamos During the Oppenheimer Years, 1943–1945. New York: Cambridge University Press. ISBN 978-0-521-44132-2. OCLC 26764320.
  • Malik, John (September 1985). (PDF). Los Alamos National Laboratory. p. 16. LA-8819. Archived from the original (PDF) on 27 February 2008. Retrieved 27 February 2008.
  • Nichols, Kenneth D. (1987). The Road to Trinity. New York: William Morrow and Company. ISBN 978-0-688-06910-0. OCLC 15223648.
  • Rhodes, Richard (1986). The Making of the Atomic Bomb. New York: Simon & Schuster. ISBN 978-0-684-81378-3. OCLC 13793436.
  • Russ, Harlow W. (1990). Project Alberta: The Preparation of Atomic Bombs For Use in World War II. Los Alamos, New Mexico: Exceptional Books. ISBN 978-0-944482-01-8. OCLC 24429257.
  • Serber, Robert; Crease, Robert P. (1998). Peace & War: Reminiscences of a Life on the Frontiers of Science. New York: Columbia University Press. ISBN 9780231105460. OCLC 37631186.
  • Sweeney, Charles; Antonucci, James A.; Antonucci, Marion K. (1997). War's End: An Eyewitness Account of America's Last Atomic Mission. Quill Publishing. ISBN 978-0-380-78874-3.
  • Teller, Edward (2001). Memoirs: A Twentieth-Century Journey in Science and Politics. Cambridge, Massachusetts: Perseus Publishing. ISBN 9780738205328. OCLC 48150267.

External links

  • Manhattan: The Army and the Atomic Bomb
  • Video footage of the bombing of Nagasaki (silent) on YouTube
  • Fat Man Model in QuickTime VR format
  • Samuels, David (23 January 2009) [15 December 2008]. "Atomic John: A truck driver uncovers secrets about the first nuclear bombs". A Reporter at Large (column). The New Yorker. Essay and interview with John Coster-Mullen, the author of Atom Bombs: The Top Secret Inside Story of Little Boy and Fat Man, 2003 (first printed in 1996, self-published), considered a definitive text about Fat Man; illustrations from which are used in the Physics Package section above.
  • The Half-Life of Genius Physicist Raemer Schreiber (2017) at IMDb – Biographical film about the life and times of physicist Raemer Schreiber

this, article, about, world, nuclear, weapon, other, uses, disambiguation, also, known, mark, codename, type, nuclear, bomb, united, states, detonated, over, japanese, city, nagasaki, august, 1945, second, only, nuclear, weapons, ever, used, warfare, first, be. This article is about the World War II nuclear weapon For other uses see Fat Man disambiguation Fat Man also known as Mark III was the codename for the type of nuclear bomb the United States detonated over the Japanese city of Nagasaki on 9 August 1945 It was the second of the only two nuclear weapons ever used in warfare the first being Little Boy and its detonation marked the third nuclear explosion in history It was built by scientists and engineers at Los Alamos Laboratory using plutonium from the Hanford Site and was dropped from the Boeing B 29 Superfortress Bockscar piloted by Major Charles Sweeney Fat ManReplica of the original Fat Man bombTypeNuclear weaponPlace of originUnited StatesProduction historyDesignerLos Alamos LaboratoryProduced1945 1949No built120SpecificationsMass10 300 pounds 4 670 kg Length128 inches 3 3 m Diameter60 inches 1 5 m FillingPlutoniumFilling weight6 4 kgBlast yield21 kt 88 TJ The name Fat Man refers to the early design of the bomb because it had a wide round shape Fat Man was an implosion type nuclear weapon with a solid plutonium core The first of that type to be detonated was the Gadget in the Trinity nuclear test less than a month earlier on 16 July at the Alamogordo Bombing and Gunnery Range in New Mexico Two more were detonated during the Operation Crossroads nuclear tests at Bikini Atoll in 1946 and some 120 were produced between 1947 and 1949 when it was superseded by the Mark 4 nuclear bomb The Fat Man was retired in 1950 Contents 1 Early decisions 2 Naming 3 Development 4 Interior 5 Assembly 6 Bombing of Nagasaki 6 1 Bomb assembly 6 2 Bombing of Nagasaki 7 Post war development 8 Notes 9 References 10 External linksEarly decisions EditRobert Oppenheimer held conferences in Chicago in June 1942 prior to the Army taking over wartime atomic research and in Berkeley California in July at which various engineers and physicists discussed nuclear bomb design issues They chose a gun type design in which two sub critical masses would be brought together by firing a bullet into a target 1 Richard C Tolman suggested an implosion type nuclear weapon but the proposal attracted little interest 2 The feasibility of a plutonium bomb was questioned in 1942 Wallace Akers the director of the British Tube Alloys project told James Bryant Conant on 14 November that James Chadwick had concluded that plutonium might not be a practical fissionable material for weapons because of impurities 3 Conant consulted Ernest Lawrence and Arthur Compton who acknowledged that their scientists at Berkeley and Chicago respectively knew about the problem but they could offer no ready solution Conant informed Manhattan Project director Brigadier General Leslie R Groves Jr who in turn assembled a special committee consisting of Lawrence Compton Oppenheimer and McMillan to examine the issue The committee concluded that any problems could be overcome simply by requiring higher purity 4 Oppenheimer reviewed his options in early 1943 and gave priority to the gun type weapon 2 but he created the E 5 Group at the Los Alamos Laboratory under Seth Neddermeyer to investigate implosion as a hedge against the threat of pre detonation Implosion type bombs were determined to be significantly more efficient in terms of explosive yield per unit mass of fissile material in the bomb because compressed fissile materials react more rapidly and therefore more completely Nonetheless it was decided that the plutonium gun would receive the bulk of the research effort since it was the project with the least uncertainty involved It was assumed that the uranium gun type bomb could be easily adapted from it 5 Naming EditThe gun type and implosion type designs were codenamed Thin Man and Fat Man respectively These code names were created by Robert Serber a former student of Oppenheimer s who worked on the Manhattan Project He chose them based on their design shapes the Thin Man was a very long device and the name came from the Dashiell Hammett detective novel The Thin Man and series of movies The Fat Man was round and fat and was named after Sydney Greenstreet s character in Hammett s The Maltese Falcon Little Boy came last as a variation of Thin Man 6 The Little Boy uranium gun type design came later and was named only to contrast with the Thin Man 6 Los Alamos s Thin Man and Fat Man code names were adopted by the United States Army Air Forces USAAF A cover story was devised that Silverplate was about modifying a Pullman car for use by President Franklin Roosevelt Thin Man and United Kingdom Prime Minister Winston Churchill Fat Man on a secret tour of the United States 7 Air Forces personnel used the code names over the phone to make it sound as though they were modifying a plane for Roosevelt and Churchill 8 Development EditNeddermeyer discarded Serber and Tolman s initial concept of implosion as assembling a series of pieces in favor of one in which a hollow sphere was imploded by an explosive shell He was assisted in this work by Hugh Bradner Charles Critchfield and John Streib L T E Thompson was brought in as a consultant and discussed the problem with Neddermeyer in June 1943 Thompson was skeptical that an implosion could be made sufficiently symmetric Oppenheimer arranged for Neddermeyer and Edwin McMillan to visit the National Defense Research Committee s Explosives Research Laboratory near the laboratories of the Bureau of Mines in Bruceton Pennsylvania a Pittsburgh suburb where they spoke to George Kistiakowsky and his team But Neddermeyer s efforts in July and August at imploding tubes to produce cylinders tended to produce objects that resembled rocks Neddermeyer was the only person who believed that implosion was practical and only his enthusiasm kept the project alive 9 Replica mockup of a Fat Man displayed in the National Museum of the United States Air Force beside the Bockscar B 29 that dropped the original device black liquid asphalt sealant was sprayed over the original bomb casing s seams simulated on the mockup Oppenheimer brought John von Neumann to Los Alamos in September 1943 to take a fresh look at implosion After reviewing Neddermeyer s studies and discussing the matter with Edward Teller von Neumann suggested the use of high explosives in shaped charges to implode a sphere which he showed could not only result in a faster assembly of fissile material than was possible with the gun method but greatly reduce the amount of material required because of the resulting higher density 10 The idea that under such pressures the plutonium metal itself would be compressed came from Teller whose knowledge of how dense metals behaved under heavy pressure was influenced by his pre war theoretical studies of the Earth s core with George Gamow 11 The prospect of more efficient nuclear weapons impressed Oppenheimer Teller and Hans Bethe but they decided that an expert on explosives would be required Kistiakowsky s name was immediately suggested and Kistiakowsky was brought into the project as a consultant in October 1943 10 The implosion project remained a backup until April 1944 when experiments by Emilio G Segre and his P 5 Group at Los Alamos on the newly reactor produced plutonium from the X 10 Graphite Reactor at Oak Ridge and the B Reactor at the Hanford site showed that it contained impurities in the form of the isotope plutonium 240 This has a far higher spontaneous fission rate and radioactivity than plutonium 239 The cyclotron produced isotopes on which the original measurements had been made held much lower traces of plutonium 240 Its inclusion in reactor bred plutonium appeared unavoidable This meant that the spontaneous fission rate of the reactor plutonium was so high that it would be highly likely that it would predetonate and blow itself apart during the initial formation of a critical mass 12 The distance required to accelerate the plutonium to speeds where predetonation would be less likely would need a gun barrel too long for any existing or planned bomber The only way to use plutonium in a workable bomb was therefore implosion 13 Small scale slow motion cut away of shaped charge implosion device The impracticability of a gun type bomb using plutonium was agreed at a meeting in Los Alamos on 17 July 1944 All gun type work in the Manhattan Project was re directed towards the Little Boy enriched uranium gun design and the Los Alamos Laboratory was reorganized with almost all of the research focused on the problems of implosion for the Fat Man bomb 13 The idea of using shaped charges as three dimensional explosive lenses came from James L Tuck and was developed by von Neumann 14 A key component needed for the success of the bomb was for there to be absolute precision in all of the plates moving inward at the same time 15 To overcome the difficulty of synchronizing multiple detonations Luis Alvarez and Lawrence Johnston invented exploding bridgewire detonators to replace the less precise primacord detonation system 14 Robert Christy is credited with doing the calculations that showed how a solid subcritical sphere of plutonium could be compressed to a critical state greatly simplifying the task since earlier efforts had attempted the more difficult compression of a hollow spherical shell 16 After Christy s report the solid plutonium core weapon was referred to as the Christy Gadget 17 The task of the metallurgists was to determine how to cast plutonium into a sphere The difficulties became apparent when attempts to measure the density of plutonium gave inconsistent results At first contamination was believed to be the cause but it was soon determined that there were multiple allotropes of plutonium 18 The brittle a phase that exists at room temperature changes to the plastic b phase at higher temperatures Attention then shifted to the even more malleable d phase that normally exists in the 300 450 C 570 840 F range It was found that this was stable at room temperature when alloyed with aluminum but aluminum emits neutrons when bombarded with alpha particles which would exacerbate the pre ignition problem The metallurgists then hit upon a plutonium gallium alloy which stabilized the d phase and could be hot pressed into the desired spherical shape As plutonium was found to corrode readily the sphere was coated with nickel 19 A pumpkin bomb Fat Man test unit being raised from the pit into the bomb bay of a B 29 for bombing practice during the weeks before the attack on NagasakiThe size of the bomb was constrained by the available aircraft which were investigated for suitability by Norman Foster Ramsey The only Allied aircraft considered capable of carrying the Fat Man without major modification were the British Avro Lancaster and the American Boeing B 29 Superfortress 20 21 22 At the time the B 29 represented the epitome of bomber technology with significant advantages in Maximum takeoff weight range speed flight ceiling and survivability Without the availability of the B 29 dropping the bomb would likely have been impossible However this still constrained the bomb to a maximum length of 11 feet 3 4 m width of 5 feet 1 5 m and weight of 20 000 pounds 9 100 kg Removing the bomb rails allowed a maximum width of 5 5 feet 1 7 m 21 Drop tests began in March 1944 and resulted in modifications to the Silverplate aircraft due to the weight of the bomb 23 High speed photographs revealed that the tail fins folded under the pressure resulting in an erratic descent Various combinations of stabilizer boxes and fins were tested on the Fat Man shape to eliminate its persistent wobble until an arrangement dubbed a California Parachute was approved a cubical open rear tail box outer surface with eight radial fins inside of it four angled at 45 degrees and four perpendicular to the line of fall holding the outer square fin box to the bomb s rear end 20 In drop tests in early weeks the Fat Man missed its target by an average of 1 857 feet 566 m but this was halved by June as the bombardiers became more proficient with it 24 The early Y 1222 model Fat Man was assembled with some 1 500 bolts 25 26 This was superseded by the Y 1291 design in December 1944 This redesign work was substantial and only the Y 1222 tail design was retained 26 Later versions included the Y 1560 which had 72 detonators the Y 1561 which had 32 and the Y 1562 which had 132 There were also the Y 1563 and Y 1564 which were practice bombs with no detonators at all 27 The final wartime Y 1561 design was assembled with just 90 bolts 25 On 16 July 1945 a Y 1561 model Fat Man known as the Gadget was detonated in a test explosion at a remote site in New Mexico known as the Trinity test It gave a yield of about 25 kilotonnes 100 TJ 28 Some minor changes were made to the design as a result of the Trinity test 29 Philip Morrison recalled that There were some changes of importance The fundamental thing was of course very much the same 30 Interior EditThe bomb was 128 375 inches 3 2607 m long and 60 25 inches 153 0 cm in diameter It weighed 10 265 pounds 4 656 kg 31 Fat Man external schematic 1 One of four AN 219 contact fuzes 2 Archie radar antenna 3 Plate with batteries to detonate charge surrounding nuclear components 4 X Unit a firing set placed near the charge 5 Hinge fixing the two ellipsoidal parts of the bomb 6 Physics package see details below 7 Plate with instruments radars baroswitches and timers 8 Barotube collector 9 California Parachute tail assembly 0 20 inch 5 1 mm aluminum sheet Fat Man internal schematicAssembly Edit Fat Man s detonation method Fat Man s physics package nuclear device about to be encased Fat Man on its transport carriage with liquid asphalt sealant applied over the casing s seams Preserved Tinian bomb pit 2 where Fat Man was loaded aboard BockscarThe plutonium pit 25 was 3 62 inches 92 mm in diameter and contained an Urchin modulated neutron initiator that was 0 8 inches 20 mm in diameter The depleted uranium tamper was an 8 75 inch diameter 222 mm sphere surrounded by a 0 125 inch thick 3 2 mm shell of boron impregnated plastic The plastic shell had a 5 inch diameter 130 mm cylindrical hole running through it like the hole in a cored apple in order to allow insertion of the pit as late as possible The missing tamper cylinder containing the pit could be slipped in through a hole in the surrounding 18 5 inch diameter 470 mm aluminum pusher 32 The pit was warm to the touch emitting 2 4 W kg Pu about 15 W for the 6 19 kilogram 13 6 lb core 33 The explosion symmetrically compressed the plutonium to twice its normal density before the Urchin added free neutrons to initiate a fission chain reaction 34 An exploding bridgewire detonator simultaneously starts a detonation wave in each of the 32 tapered high explosive columns positioned around the explosive material at the face centers of a truncated icosahedron 35 a geometry popularly known from the pattern of common soccer balls The detonation wave arrows is initially convex in the faster explosive Composition B 60 RDX 40 TNT 35 The wavefronts become concave in the slower explosive Baratol 70 barium nitrate 30 TNT 35 The 32 waves then merge into a single spherical implosive shock wave which hits the inner charges faster explosive Composition B 32 The medium density aluminum pusher transfers the imploding shock wave from the low density explosive to the high density uranium minimizing undesirable turbulence 36 The shock wave then compresses the inner components passing through a boron plastic shell intended to prevent pre detonation of the bomb by stray neutrons 36 The shock wave reaches the center of the bomb where the beryllium 210Po Urchin is crushed 37 pushing the two metals together and thereby releasing a burst of neutrons into the compressed pit of the nickel plated delta phase alloy of 239Pu 240Pu gallium 96 1 3 by molarity 38 39 A fission chain reaction then begins The tendency of the fissioning pit to blow itself apart prematurely is reduced by the inward momentum of the natural uranium tamper inertial confinement The tamper also reflects neutrons back into the pit accelerating the chain reaction If and when sufficient fast neutrons are produced the tamper itself undergoes fission accounting for up to 30 of the weapon s yield 40 The result was the fission of about 1 kilogram 2 2 lb of the 6 19 kilograms 13 6 lb of plutonium in the pit i e of about 16 of the fissile material present 41 42 The detonation released the energy equivalent to the detonation of 21 kilotons of TNT or 88 terajoules 43 About 30 of the yield came from fission of the uranium tamper 40 Bombing of Nagasaki EditMain article Atomic bombings of Hiroshima and Nagasaki Bombing of Nagasaki Bomb assembly Edit Mushroom cloud after Fat Man exploded over Nagasaki on 9 August 1945The first plutonium core was transported with its polonium beryllium modulated neutron initiator in the custody of Project Alberta courier Raemer Schreiber in a magnesium field carrying case designed for the purpose by Philip Morrison Magnesium was chosen because it does not act as a tamper 34 It left Kirtland Army Air Field on a C 54 transport aircraft of the 509th Composite Group s 320th Troop Carrier Squadron on 26 July and arrived at North Field on Tinian on 28 July Three Fat Man high explosive pre assemblies designated F31 F32 and F33 were picked up at Kirtland on 28 July by three B 29s Luke the Spook and Laggin Dragon from the 509th Composite Group s 393d Bombardment Squadron and another from the 216th Army Air Forces Base Unit The cores were transported to North Field arriving on 2 August when F31 was partly disassembled in order to check all its components F33 was expended near Tinian during a final rehearsal on 8 August F32 presumably would have been used for a third attack or its rehearsal 44 On 7 August the day after the bombing of Hiroshima Rear Admiral William R Purnell Commodore William S Parsons Tibbets General Carl Spaatz and Major General Curtis LeMay met on Guam to discuss what should be done next 45 Since there was no indication of Japan surrendering 46 they decided to proceed with their orders and drop another bomb Parsons said that Project Alberta would have it ready by 11 August but Tibbets pointed to weather reports indicating poor flying conditions on that day due to a storm and asked if the bomb could be made ready by 9 August Parsons agreed to try to do so 45 47 Fat Man F31 was assembled on Tinian by Project Alberta personnel 44 and the physics package was fully assembled and wired It was placed inside its ellipsoidal aerodynamic bombshell and wheeled out where it was signed by nearly 60 people including Purnell Brigadier General Thomas F Farrell and Parsons 48 It was then wheeled to the bomb bay of the B 29 Superfortress named Bockscar after the plane s command pilot Captain Frederick C Bock 49 who flew The Great Artiste with his crew on the mission Bockscar was flown by Major Charles W Sweeney and his crew with Commander Frederick L Ashworth from Project Alberta as the weaponeer in charge of the bomb 50 Bombing of Nagasaki Edit Bockscar in a post war photoBockscar lifted off at 03 47 on the morning of 9 August 1945 with Kokura as the primary target and Nagasaki the secondary target The weapon was already armed but with the green electrical safety plugs still engaged Ashworth changed them to red after ten minutes so that Sweeney could climb to 17 000 feet 5 200 m in order to get above storm clouds 51 During the pre flight inspection of Bockscar the flight engineer notified Sweeney that an inoperative fuel transfer pump made it impossible to use 640 US gallons 2 400 L of fuel carried in a reserve tank This fuel would still have to be carried all the way to Japan and back consuming still more fuel Replacing the pump would take hours moving the Fat Man to another aircraft might take just as long and was dangerous as well as the bomb was live Colonel Paul Tibbets and Sweeney therefore elected to have Bockscar continue the mission 52 Effects of the Fat Man s detonation on NagasakiThe target for the bomb was the city of Kokura but it was found to be obscured by clouds and drifting smoke from fires started by a major firebombing raid by 224 B 29s on nearby Yahata the previous day This covered 70 of the area over Kokura obscuring the aiming point Three bomb runs were made over the next 50 minutes burning fuel and repeatedly exposing the aircraft to the heavy defenses of Yahata but the bombardier was unable to drop visually By the time of the third bomb run Japanese anti aircraft fire was getting close Second Lieutenant Jacob Beser was monitoring Japanese communications and he reported activity on the Japanese fighter direction radio bands 53 Sweeney then proceeded to the alternative target of Nagasaki It was obscured by clouds as well and Ashworth ordered Sweeney to make a radar approach At the last minute however bombardier 51 Captain Kermit K Beahan 50 found a hole in the clouds The Fat Man was dropped and exploded at 11 02 local time following a 43 second free fall at an altitude of about 1 650 feet 500 m 51 There was poor visibility due to cloud cover and the bomb missed its intended detonation point by almost two miles so the damage was somewhat less extensive than that in Hiroshima An estimated 35 000 40 000 people were killed outright by the bombing at Nagasaki A total of 60 000 80 000 fatalities resulted including from long term health effects the strongest of which was leukemia with an attributable risk of 46 for bomb victims 54 Others died later from related blast and burn injuries and hundreds more from radiation illnesses from exposure to the bomb s initial radiation 55 Most of the direct deaths and injuries were among munitions or industrial workers 56 Mitsubishi s industrial production in the city was also severed by the attack the dockyard would have produced at 80 percent of its full capacity within three to four months the steelworks would have required a year to get back to substantial production the electric works would have resumed some production within two months and been back at capacity within six months and the arms plant would have required 15 months to return to 60 to 70 percent of former capacity The Mitsubishi Urakami Ordnance Works which manufactured the Type 91 torpedoes released in the attack on Pearl Harbor was destroyed in the blast 56 57 Post war development Edit Espionage information procured by Klaus Fuchs Theodore Hall and David Greenglass led to the first Soviet device RDS 1 above which closely resembled Fat Man even in its external shape After the war two Y 1561 Fat Man bombs were used in the Operation Crossroads nuclear tests at Bikini Atoll in the Pacific The first was known as Gilda after Rita Hayworth s character in the 1946 movie Gilda and it was dropped by the B 29 Dave s Dream it missed its aim point by 710 yards 650 m The second bomb was nicknamed Helen of Bikini and was placed without its tail fin assembly in a steel caisson made from a submarine s conning tower it was detonated 90 feet 27 m beneath the landing craft USS LSM 60 The two weapons yielded about 23 kilotonnes 96 TJ each 58 The Los Alamos Laboratory and the Army Air Forces had already commenced work on improving the design The North American B 45 Tornado Convair XB 46 Martin XB 48 and Boeing B 47 Stratojet bombers had bomb bays sized to carry the Grand Slam which was much longer but not as wide as the Fat Man The only American bombers that could carry the Fat Man were the B 29 and the Convair B 36 In November 1945 the Army Air Forces asked Los Alamos for 200 Fat Man bombs but there were only two sets of plutonium cores and high explosive assemblies at the time The Army Air Forces wanted improvements to the design to make it easier to manufacture assemble handle transport and stockpile The wartime Project W 47 was continued and drop tests resumed in January 1946 59 The Mark III Mod 0 Fat Man was ordered into production in mid 1946 High explosives were manufactured by the Salt Wells Pilot Plant which had been established by the Manhattan Project as part of Project Camel and a new plant was established at the Iowa Army Ammunition Plant Mechanical components were made or procured by the Rock Island Arsenal electrical and mechanical components for about 50 bombs were stockpiled at Kirtland Army Air Field by August 1946 but only nine plutonium cores were available Production of the Mod 0 ended in December 1948 by which time there were still only 53 cores available It was replaced by improved versions known as Mods 1 and 2 which contained a number of minor changes the most important of which was that they did not charge the X Unit firing system s capacitors until released from the aircraft The Mod 0s were withdrawn from service between March and July 1949 and by October they had all been rebuilt as Mods 1 and 2 60 Some 120 Mark III Fat Man units were added to the stockpile between 1947 and 1949 61 when it was superseded by the Mark 4 nuclear bomb 62 The Mark III Fat Man was retired in 1950 61 63 A nuclear strike would have been a formidable undertaking in the post war 1940s due to the limitations of the Mark III Fat Man The lead acid batteries which powered the fuzing system remained charged for only 36 hours after which they needed to be recharged To do this meant disassembling the bomb and recharging took 72 hours The batteries had to be removed in any case after nine days or they corroded The plutonium core could not be left in for much longer because its heat damaged the high explosives Replacing the core also required the bomb to be completely disassembled and reassembled This required about 40 to 50 men and took between 56 and 72 hours depending on the skill of the bomb assembly team and the Armed Forces Special Weapons Project had only three teams in June 1948 The only aircraft capable of carrying the bomb were Silverplate B 29s and the only group equipped with them was the 509th Bombardment Group at Walker Air Force Base in Roswell New Mexico They would first have to fly to Sandia Base to collect the bombs and then to an overseas base from which a strike could be mounted 64 In March 1948 during the Berlin Blockade all the assembly teams were in Eniwetok for the Operation Sandstone test and the military teams were not yet qualified to assemble atomic weapons 65 In June 1948 General Omar Bradley Major General Alfred Gruenther and Brigadier General Anthony McAuliffe visited Sandia and Los Alamos to show them the special requirements of atomic weapons Gruenther asked Brigadier General Kenneth Nichols When are you going to show us the real thing Surely this laboratory monstrosity is not the only type of atomic bomb we have in stockpile 66 Nichols told him that better weapons would soon become available After the astonishingly good results of Operation Sandstone were available stockpiling of improved weapons began 66 The Soviet Union s first nuclear weapon was based closely on Fat Man s design thanks to spies Klaus Fuchs Theodore Hall and David Greenglass who provided them with secret information concerning the Manhattan Project and Fat Man It was detonated on 29 August 1949 as part of Operation First Lightning 67 68 69 Notes Edit Hoddeson et al 1993 pp 42 44 a b Hoddeson et al 1993 p 55 Nichols 1987 p 64 Nichols 1987 pp 64 65 Hoddeson et al 1993 p 87 a b Serber amp Crease 1998 p 104 Bowen 1959 p 96 Rhodes 1986 p 481 Hoddeson et al 1993 pp 86 90 a b Hoddeson et al 1993 pp 130 133 Teller 2001 pp 174 176 Hoddeson et al 1993 p 228 a b Hoddeson et al 1993 pp 240 244 a b Hoddeson et al 1993 p 163 Coster Mullen 2012 p 110 Hoddeson et al 1993 pp 270 271 Hoddeson et al 1993 pp 293 307 308 Hewlett amp Anderson 1962 pp 244 245 Baker Hecker amp Harbur 1983 pp 144 145 a b Hoddeson et al 1993 pp 380 383 a b Hansen 1995 pp 119 120 Groves 1962 p 254 Campbell 2005 pp 8 10 Hansen 1995 p 131 a b c Coster Mullen 2012 p 52 a b Hansen 1995 p 121 Hansen 1995 p 127 Selby Hugh D Hanson Susan K Meininger Daniel Oldham Warren J Kinman William S Miller Jeffrey L Reilly Sean D Wende Allison M Berger Jennifer L Inglis Jeremy Pollington Anthony D Waidmann Christopher R Meade Roger A Buescher Kevin L Gattiker James R Vander Wiel Scott A Marcy Peter W 11 October 2021 A New Yield Assessment for the Trinity Nuclear Test 75 Years Later Nuclear Technology 207 sup1 321 325 doi 10 1080 00295450 2021 1932176 ISSN 0029 5450 S2CID 244134027 Hoddeson et al 1993 p 377 Coster Mullen 2012 p 53 Coster Mullen 2012 p 47 a b Coster Mullen 2012 p 186 Coster Mullen 2012 p 49 a b Coster Mullen 2012 p 45 a b c Coster Mullen 2012 p 41 a b Hansen 1995 pp 122 123 Coster Mullen 2012 p 48 Coster Mullen 2012 p 57 Sublette Carey 3 July 2007 Section 8 0 The First Nuclear Weapons Nuclear Weapons FAQ Retrieved 29 August 2013 a b Wellerstein Alex 10 November 2014 The Fat Man s Uranium Restricted Data Retrieved 9 December 2020 Coster Mullen 2012 p 46 Wellerstein Alex 23 December 2013 Kilotons per kilogram Restricted Data Retrieved 9 December 2020 Malik 1985 p 25 a b Campbell 2005 pp 38 40 a b Russ 1990 pp 64 65 Frank 1999 pp 283 284 Groves 1962 p 342 Coster Mullen 2012 p 67 Bockscar The Forgotten Plane That Dropped The Atomic Bomb A Little Touch Of History Awesometalks wordpress com 7 August 2008 Retrieved 31 August 2012 a b Campbell 2005 p 32 a b c Rhodes 1986 p 740 Sweeney Antonucci amp Antonucci 1997 pp 204 205 Sweeney Antonucci amp Antonucci 1997 pp 179 213 215 Columbia university center for nuclear studies Hiroshima and Nagasaki The Long Term Health Effects Archived 23 July 2015 at the Wayback Machine updated 7 3 2014 Craven amp Cate 1953 pp 723 725 a b Nuke Rebuke Writers amp Artists Against Nuclear Energy amp Weapons The Contemporary anthology series The Spirit That Moves Us Press 1 May 1984 pp 22 29 United States Strategic Bombing Survey Summary Report Pacific War The Effects Of The Atomic Bombs U S Strategic Bombing Survey p 24 Coster Mullen 2012 pp 84 85 Hansen 1995 pp 137 142 Hansen 1995 pp 142 145 a b Coster Mullen 2012 p 87 Hansen 1995 p 143 Hansen 1995 p 150 Hansen 1995 pp 147 149 Nichols 1987 pp 260 264 265 a b Nichols 1987 p 264 Holmes Marian Smith 19 April 2009 Spies Who Spilled Atomic Bomb Secrets Smithsonian Retrieved 5 April 2019 Holloway David 1993 Soviet Scientists Speak Out Bulletin of the Atomic Scientists 49 4 18 19 Bibcode 1993BuAtS 49d 18H doi 10 1080 00963402 1993 11456340 Sublette Carey 3 July 2007 Section 8 1 1 The Design of Gadget Fat Man and Joe 1 RDS 1 Nuclear Weapons FAQ Retrieved 12 August 2011 References EditBaker Richard D Hecker Siegfried S Harbur Delbert R 1983 Plutonium A Wartime Nightmare but a Metallurgist s Dream PDF Los Alamos Science Winter Spring 142 151 Retrieved 22 November 2010 Bowen Lee 1959 Vol I Project Silverplate 1943 1946 PDF The History of Air Force Participation in the Atomic Energy Program 1943 1953 Washington D C U S Air Force Air University Historical Liaison Office Archived from the original PDF on 22 February 2014 Retrieved 28 July 2013 Campbell Richard H 2005 The Silverplate Bombers A History and Registry of the Enola Gay and Other B 29s Configured to Carry Atomic Bombs Jefferson North Carolina McFarland amp Company ISBN 978 0 7864 2139 8 OCLC 58554961 Coster Mullen John 2012 Atom Bombs The Top Secret Inside Story of Little Boy and Fat Man Waukesha Wisconsin J Coster Mullen ASIN B0006S2AJ0 OCLC 298514167 Craven Wesley Cate James eds 1953 The Pacific Matterhorn to Nagasaki The Army Air Forces in World War II Chicago The University of Chicago Press OCLC 256469807 Groves Leslie 1962 Now It Can Be Told The Story of the Manhattan Project New York Harper ISBN 0 306 70738 1 OCLC 537684 Frank Richard B 1999 Downfall The End of the Imperial Japanese Empire New York Random House ISBN 978 0 679 41424 7 Hansen Chuck 1995 Volume V US Nuclear Weapons Histories Swords of Armageddon US Nuclear Weapons Development since 1945 Sunnyvale California Chukelea Publications ISBN 978 0 9791915 0 3 OCLC 231585284 Hewlett Richard G Anderson Oscar E 1962 The New World 1939 1946 PDF University Park Pennsylvania State University Press ISBN 978 0 520 07186 5 OCLC 637004643 Archived PDF from the original on 27 February 2012 Retrieved 26 March 2013 Hoddeson Lillian Henriksen Paul W Meade Roger A Westfall Catherine L 1993 Critical Assembly A Technical History of Los Alamos During the Oppenheimer Years 1943 1945 New York Cambridge University Press ISBN 978 0 521 44132 2 OCLC 26764320 Malik John September 1985 The yields of the Hiroshima and Nagasaki nuclear explosions PDF Los Alamos National Laboratory p 16 LA 8819 Archived from the original PDF on 27 February 2008 Retrieved 27 February 2008 Nichols Kenneth D 1987 The Road to Trinity New York William Morrow and Company ISBN 978 0 688 06910 0 OCLC 15223648 Rhodes Richard 1986 The Making of the Atomic Bomb New York Simon amp Schuster ISBN 978 0 684 81378 3 OCLC 13793436 Russ Harlow W 1990 Project Alberta The Preparation of Atomic Bombs For Use in World War II Los Alamos New Mexico Exceptional Books ISBN 978 0 944482 01 8 OCLC 24429257 Serber Robert Crease Robert P 1998 Peace amp War Reminiscences of a Life on the Frontiers of Science New York Columbia University Press ISBN 9780231105460 OCLC 37631186 Sweeney Charles Antonucci James A Antonucci Marion K 1997 War s End An Eyewitness Account of America s Last Atomic Mission Quill Publishing ISBN 978 0 380 78874 3 Teller Edward 2001 Memoirs A Twentieth Century Journey in Science and Politics Cambridge Massachusetts Perseus Publishing ISBN 9780738205328 OCLC 48150267 External links Edit Wikimedia Commons has media related to Fat Man Manhattan The Army and the Atomic Bomb Video footage of the bombing of Nagasaki silent on YouTube Fat Man Model in QuickTime VR format Samuels David 23 January 2009 15 December 2008 Atomic John A truck driver uncovers secrets about the first nuclear bombs A Reporter at Large column The New Yorker Essay and interview with John Coster Mullen the author of Atom Bombs The Top Secret Inside Story of Little Boy and Fat Man 2003 first printed in 1996 self published considered a definitive text about Fat Man illustrations from which are used in the Physics Package section above The Half Life of Genius Physicist Raemer Schreiber 2017 at IMDb Biographical film about the life and times of physicist Raemer Schreiber Portals Nuclear technology History of science World War II Retrieved from https en wikipedia org w index php title Fat Man amp oldid 1170932638, wikipedia, wiki, book, books, library,

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