超高速撞击中尺度模拟与碎片生成

Stephanie N. Q. Bouchey, J. Hollenshead
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引用次数: 0

摘要

超高速撞击后的材料碎裂是预测电光和红外(EO/IR)建模的重要内容。与数据的成功比较要求在这种撞击中产生亚微米碎片;然而,到目前为止,实验数据还无法产生这种规模的片段[例如,1-3]。这项工作研究了一个球体在一个平坦的半无限板块上的超高速撞击所预测的碎片的产生。假设晶粒的显式建模,特别是在存在空洞和不同晶粒性质的情况下,可能导致与晶界相关的预测应变率(局部较高)的差异。这种效应可能导致比使用传统块体建模方法时预测的碎片尺寸更小,并可能提高对超高速碰撞中碎片建模的理解。在使用体模型方法和中尺度颗粒模型方法进行的模拟中,比较了预测的失效应变率(碎片尺寸的代理)和材料温度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Mesoscale modeling and debris generation in hypervelocity impacts
Material fragmentation after a hypervelocity impact is of interest to predictive electro-optical and infrared (EO/IR) modeling. Successful comparisons with data require that submicron fragments are generated in such impacts; however, experimental data has so far been unable to produce fragments of this scale [e.g., 1-3]. This effort investigated the generation of predicted debris from hypervelocity impact of a sphere on a flat, semi-infinite plate. It is hypothesized that explicit modeling of grains, especially in the presence of void and varying grain properties, may lead to differences in predicted strain rates (locally higher) associated with the grain boundaries. Such an effect may lead to smaller predicted fragments sizes than when using the traditional bulk modeling approach and may provide improved understanding of fragmentation modeling in hypervelocity impacts. Comparisons of predicted strain rates at failure (a proxy for fragment size) and material temperature were made between simulations run using a bulk modeling approach and a mesoscale grain modeling approach.
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