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High-order numerical simulation and modelling of the interaction of energetic and inert materials

机译:高能与惰性材料相互作用的高阶数值模拟与建模

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We present an integrated algorithm on a Eulerian grid, for multimaterial simulations of energetic and inert materials modelled by non-ideal equations of state. We employ high-resolution shock capturing numerical algorithms for each material inside its domain and use an overlap domain method across the interface, maintained by a recently developed, hybrid, level-set algorithm. For applications to condensed explosives we implement a non-ideal, wide-ranging equation of state and reaction rate law. For inert materials, like plastic, metal, water, etc., we implement a (linear in the pressure) Mie-Gruneisen, (U-p - U-s), equation of state. We present a series of verifications of the integrated multimaterial code and show validations against experiment. We show examples of simulations of various experiments associated with real or planned experiments, some of which contain energetic materials (specifically the condensed explosives PBX-9502 and PBX-9501).
机译:我们提出了一种在欧拉网格上的集成算法,用于通过非理想状态方程建模的高能和惰性材料的多材料模拟。我们对每种材料在其域内采用高分辨率的震动捕捉数值算法,并在界面上使用重叠域方法,该方法由最近开发的混合,水平集算法维护。对于浓缩炸药的应用,我们实现了一个非理想的,范围广泛的状态和反应速率定律方程。对于惰性材料,例如塑料,金属,水等,我们实现(压力线性)米-格鲁伊森(U-p-U-s)状态方程。我们提出了对集成的多材料代码的一系列验证,并显示了针对实验的验证。我们展示了与真实或计划实验相关的各种实验的模拟示例,其中一些包含高能材料(特别是浓缩炸药PBX-9502和PBX-9501)。

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