Schorge Volker, Grossjohann Rico, Schönekess Holger C, Herbst Jörg, Bockholdt Britta, Ekkernkamp Axel, Frank Matthias
Department of Trauma and Orthopedic Surgery, University Medicine Greifswald, Sauerbruchstraße, 17475, Greifswald, Germany.
Physikalisch-Technische Bundesanstalt (PTB), Bundesallee 100, 38116, Braunschweig, Germany.
Int J Legal Med. 2016 May;130(3):737-42. doi: 10.1007/s00414-015-1240-0. Epub 2015 Aug 4.
Potato guns are popular homemade guns which work on the principle of gas combustion. They are usually constructed for recreational rather than criminal purposes. Yet some serious injuries and fatalities due to these guns are reported. As information on the internal ballistics of homemade gas combustion-powered guns is scarce, it is the aim of this work to provide an experimental model of the internal ballistics of these devices and to investigate their basic physical parameters. A gas combustion gun was constructed with a steel tube as the main component. Gas/air mixtures of acetylene, hydrogen, and ethylene were used as propellants for discharging a 46-mm caliber test projectile. Gas pressure in the combustion chamber was captured with a piezoelectric pressure sensor. Projectile velocity was measured with a ballistic speed measurement system. The maximum gas pressure, the maximum rate of pressure rise, the time parameters of the pressure curve, and the velocity and path of the projectile through the barrel as a function of time were determined according to the pressure-time curve. The maximum gas pressure was measured to be between 1.4 bar (ethylene) and 4.5 bar (acetylene). The highest maximum rate of pressure rise was determined for hydrogen at (dp/dt)max = 607 bar/s. The muzzle energy was calculated to be between 67 J (ethylene) and 204 J (acetylene). To conclude, this work provides basic information on the internal ballistics of homemade gas combustion guns. The risk of injury to the operator or bystanders is high, because accidental explosions of the gun due to the high-pressure rise during combustion of the gas/air mixture may occur.
土豆枪是一种很受欢迎的自制枪支,其工作原理是气体燃烧。它们通常是为娱乐目的而非犯罪目的制造的。然而,仍有一些因这些枪支导致的严重伤害和死亡事件被报道。由于关于自制气体燃烧动力枪支内弹道的信息稀缺,这项工作的目的是提供这些装置内弹道的实验模型,并研究其基本物理参数。以钢管为主要部件制造了一支气体燃烧枪。使用乙炔、氢气和乙烯的气体/空气混合物作为推进剂,用于发射一枚46毫米口径的测试弹丸。用压电压力传感器采集燃烧室内的气体压力。用弹道速度测量系统测量弹丸速度。根据压力-时间曲线确定最大气体压力、最大压力上升速率、压力曲线的时间参数以及弹丸通过枪管的速度和轨迹随时间的变化。测得最大气体压力在1.4巴(乙烯)至4.5巴(乙炔)之间。氢气的最大压力上升速率最高,为(dp/dt)max = 607巴/秒。计算得出枪口能量在67焦耳(乙烯)至204焦耳(乙炔)之间。总之,这项工作提供了关于自制气体燃烧枪内弹道的基本信息。由于气体/空气混合物燃烧过程中压力急剧上升可能导致枪支意外爆炸,操作人员或旁观者受伤的风险很高。