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Modeling of the exploding foil initiator and related circuitry for the variable mode of operation

机译:用于可变操作模式的爆炸箔引发器和相关电路的建模

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Analytical and numerical models, validated against published data, were developed to calculate the velocity and time of arrival duration (ToAD) of the flyer-plasma material at the top of the barrel of an exploding foil initiator (EFI), as commonly used in explosive devices. Such tools will aid system designers in the optimization of capacitor discharge circuit (CDC) or EFI bridge material properties. The analytical elements of the approach developed support the requirement for the consideration of mass ejection variation with respect to initial capacitor voltage. The numerical elements of the approach developed demonstrate that EFI design alteration to increase flyer mass is less effective in reducing ToAD than supply voltage modulation via the CDC. This finding is of particular relevance for in situ control of functional performance characteristics. This work goes on to demonstrate that such control is impracticable when using hexanitrostilbene, since the initial capacitor voltages necessary to yield appropriate ToAD for deflagration deliver insufficient energy to instigate a response from the EFI.
机译:用于验证公布数据的分析和数值模型,以计算爆炸箔引发剂(EFI)顶部的传单 - 等离子体材料的到达持续时间(蟾蜍)的速度和时间,如爆炸性的设备。这些工具将帮助系统设计人员在优化电容放电电路(CDC)或EFI桥接材料特性中。该方法的分析元件开发了支持对初始电容器电压相对于初始电容器电压的质量喷射变化的要求。该方法的数值元素表明,EFI设计改变在减少通过CDC的电源电压调制而不是通过CDC的电源电压调制而减少效果较小。这种发现对于原位控制功能性能特征特别相关。这项工作继续证明,当使用六硝基苯丙乙烯时,这种控制是不切实际的,因为产生适当的蟾蜍的初始电容电压,用于剥离的燃料不足,以溶解来自EFI的反应。

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