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Temperature Compensation and Improved Ballistic Performance in a Solid-Propellant Electrothermal-Chemical (SPETC) 40-mm Gun

机译:固体推进剂电热化学(SPETC)40毫米炮的温度补偿和改进的弹道性能

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A solid-propellant electrothermal-chemical (SPETC) 40-mm gun has been designed, constructed, and tested in the indoor firing facilities of the Soreq Propulsion Division Laboratory. An external injector device converts the electric energy stored in the capacitors of the pulse forming network (PFN) into a high-temperature plasma jet that penetrates the gun cartridge and boosts the whole ballistic process. However, unlike large-caliber SPETC systems, in which electric energy is limited to ignition purposes, the 40-mm SPETC gun is a genuine hybrid gun with almost equal electric and chemical contributions. There is experimental evidence that this unique feature induces a very peculiar initial propellant temperature compensation mechanism. It seems that when a significant part of the propelling energy comes from the plasma, i.e., electric energy is not only predominant at the ignition stage of the firing but also later on, then the temperature sensitivity of the propellant tends to vanish. A simple theoretical model supports the experimental findings. The large amount of electric energy is also responsible for a recorded ballistic improvement of 15% in the projectile muzzle kinetic energy. Calibrated simulations show that an optimal tailoring of the power pulse shape and suitable propellant grain geometry should further increase by 10% the muzzle kinetic energy. These modifications are in progress and results should be soon available
机译:固态推进剂电热化学(SPETC)40毫米火炮已经在Soreq推进司实验室的室内射击设施中进行了设计,构造和测试。外部喷射器设备将存储在脉冲形成网络(PFN)的电容器中的电能转换为高温等离子射流,该射流可穿透枪弹并增强整个弹道过程。但是,与大口径SPETC系统(其中电能仅限于点火目的)不同,40毫米SPETC枪是真正的混合动力枪,具有几乎相等的电和化学成分。有实验证据表明,这一独特特征引起了非常独特的初始推进剂温度补偿机制。看来,当很大一部分推进能量来自等离子体时,即,电能不仅在点火的点火阶段占主导地位,而且在以后又占主导地位,则推进剂的温度敏感性趋于消失。一个简单的理论模型支持实验结果。大量的电能还导致弹口的动能达到15%的弹道记录。校准的模拟表明,功率脉冲形状和合适的推进剂颗粒几何形状的最佳调整应进一步将枪口动能提高10%。这些修改正在进行中,应尽快提供结果

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