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Penetration of a shaped charge

机译:穿透聚能射孔弹

摘要

A shaped charge is an explosive device used to penetrate thick targets using a high velocity jet. A typical shaped charge contains explosive material behind a conical hollow. The hollow is lined with a compliant material, such as copper. Extremely high stresses caused by the detonation of the explosive have a focusing effect on the liner, turning it into a long, slender, stretching jet with a tip speed of up to 12km/s. A mathematical model for the penetration of this jet into a solid target is developed with the goal of accurately predicting the resulting crater depth and diameter. The model initially couples fluid dynamics in the jet with elastic-plastic solid mechanics in the target. Far away from the tip, the high aspect ratio is exploited to reduce the dimensionality of the problem by using slender body theory. In doing so, a novel system of partial differential equations for the free-boundaries between fluid, plastic and elastic regions and for the velocity potential of the jet is obtained. In order to gain intuition, the paradigm expansion-contraction of a circular cavity under applied pressure is considered. This yields the interesting possibility of residual stresses and displacements. Using these ideas, a more realistic penetration model is developed. Plastic flow of the target near the tip of the jet is considered, using a squeeze-film analogy. Models for the flow of the jet in the tip are then proposed, based on simple geometric arguments in the slender region. One particular scaling in the tip leads to the consideration of a two-dimensional paradigm model of a ``filling-flow'' impacting on an obstacle, such as a membrane or beam. Finally, metallurgical analysis and hydrocode runs are presented. Unresolved issues are discussed and suggestions for further work are presented.
机译:聚能炸药是一种爆炸​​装置,用于使用高速射流穿透较厚的目标。典型的聚能炸药在圆锥形空心后面包含爆炸性材料。空心衬有诸如铜之类的柔性材料。由炸药爆炸引起的极高应力会对衬套产生聚焦作用,使衬套变成长而细长的拉伸射流,尖端速度可达12 km / s。建立了用于将该射流穿透到固体目标中的数学模型,其目的是准确预测产生的弹坑深度和直径。该模型首先将射流中的流体动力学与目标中的弹塑性固体力学耦合。远离尖端,通过使用细长体理论来开发高纵横比以减少问题的维数。通过这样做,获得了用于流体,塑性和弹性区域之间的自由边界以及射流的速度势的偏微分方程的新颖系统。为了获得直觉,考虑在施加压力的情况下圆形腔的范式伸缩。这产生了残余应力和位移的有趣可能性。利用这些想法,开发了更现实的渗透模型。使用挤压膜类比法,可以考虑目标在射流尖端附近的塑性流动。然后,基于细长区域中的简单几何参数,提出了喷嘴在喷嘴中流动的模型。尖端中的一种特定缩放比例导致需要考虑碰撞物体(例如膜或光束)的``填充流''的二维范式模型。最后,介绍了冶金分析和液压规范运行。讨论了未解决的问题,并提出了进一步工作的建议。

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    Poole Chris;

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  • 年度 2005
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  • 原文格式 PDF
  • 正文语种 English
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