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首页> 外文期刊>International journal of impact engineering >Ballistic performance of ceramic and ceramic-metal composite plates with JH1, JH2 and JHB material models
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Ballistic performance of ceramic and ceramic-metal composite plates with JH1, JH2 and JHB material models

机译:使用JH1,JH2和JHB材料模型的陶瓷和陶瓷金属复合板的弹道性能

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摘要

The ceramic and ceramic-metal composite plates upon high velocity impact by a kinetic energy rod may undergo spalling, fragmentation, interface debonding, perforation, bending, and stretching. A challenge in studying these problems is using a material model that realistically simulates the material response at high plastic strains, plastic strain rates and hydrostatic pressures. The choice of the material model and the computational framework influence predictions of deformations of the projectile-target system. Three constitutive relations generally employed to study deformations of a ceramic are due to Johnson and Holmquist, generally abbreviated as JH1, JH2 and JHB. We have implemented these in a computational algorithm using Smoothed Particle Hydrodynamics (SPH) basis functions and a pseudo-spring technique to simulate the initiation and propagation of material failure. After ensuring that the computed results for two flyer plate impact experiments agree well with the test findings, we have studied penetration of monolithic ceramic and ceramic/aluminium targets by kinetic energy rods having blunt, hemispherical and conical nose shapes. It is shown that the present approach can successfully predict spalling, formation of conoid, fragmentation and crack branching in the ceramic, and bending/stretching of metal backing plates. Whereas results from the JH1 and the JHB material models are qualitatively similar, those using the JHB constitutive relation are closest to the test observations. This work suggests that one should use the JHB model for analyzing impact and penetration of a ceramic plate.
机译:陶瓷和陶瓷金属复合板在受到动能棒的高速冲击后可能会发生剥落,碎裂,界面剥离,穿孔,弯曲和拉伸。研究这些问题的一个挑战是使用一种材料模型,该模型可以真实地模拟在高塑性应变,塑性应变速率和静水压力下的材料响应。材料模型的选择和计算框架会影响弹丸目标系统变形的预测。通常用于研究陶瓷变形的三个本构关系归因于Johnson和Holmquist,通常缩写为JH1,JH2和JHB。我们已使用平滑粒子流体动力学(SPH)基本函数和伪弹簧技术在计算算法中实现了这些功能,以模拟材料破坏的发生和传播。在确保两次飞行器板撞击实验的计算结果与测试结果完全吻合后,我们研究了具有钝形,半球形和锥形鼻形动能棒对单片陶瓷和陶瓷/铝靶的穿透性。结果表明,本方法可以成功地预测陶瓷中的剥落,圆锥体的形成,碎裂和裂纹分支以及金属背板的弯曲/拉伸。尽管JH1和JHB材料模型的结果在质量上相似,但使用JHB本构关系的结果最接近测试观察结果。这项工作表明,应该使用JHB模型来分析陶瓷板的冲击和渗透。

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