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Effect of elastic target on Taylor-Hopkinson impact of low-density foam material

机译:弹性靶对低密度泡沫材料泰勒-霍普金森冲击的影响

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As a common approach to evaluate the dynamic strength of cellular materials, the Taylor-Hopkinson test is often carried out by utilizing cylindrical cellular samples striking on the Hopkinson bar axially and determining the dynamic stress through the final deformation of the projectiles. However, extensive related theoretical analyses regard the Hopkinson bar as a rigid wall and ignore the influence of the elastic target bar, which may lead to inaccurate estimation of the dynamic stress of foam materials. In this work, a theoretical model for a low-density foam projectile impinging against a semi-infinite elastic target bar is presented to investigate the effect of elastic target bar on the dynamic stress prediction of the Taylor Hopkinson test. A shock wave model incorporating the elastic wave propagation in the target bar is developed to obtain the deformation history and kinematic process of the foam projectile. It is demonstrated that the elastic properties of the target bar have a significant effect on the duration and deformation of the impact process. It is also indicated that the material and geometric parameters of the foam projectile and the target bar, and the initial velocity of the foam projectile have great influence on the impact contact duration and the final deformation of the foam projectile. The history and final deformation of the foam projectile predicted by the present model are compared well with experimental results and finite element simulations. The present analysis provides a more accurate way to take advantage of the Taylor-Hopkinson test to predict the dynamic behavior of low-density foam materials. (C) 2016 Elsevier Ltd. All rights reserved.
机译:作为评估多孔材料动态强度的常用方法,泰勒-霍普金森(Taylor-Hopkinson)测试通常是通过利用轴向撞击在霍普金森杆上的圆柱形多孔样品并通过弹丸的最终变形来确定动态应力来进行的。但是,广泛的相关理论分析将霍普金森杆视为刚性壁,而忽略了弹性目标杆的影响,这可能导致泡沫材料动应力的估计不准确。在这项工作中,提出了一种撞击半无限弹性目标杆的低密度泡沫弹丸的理论模型,以研究弹性目标杆对泰勒霍普金森试验的动态应力预测的影响。建立了包含弹性波在目标杆中传播的冲击波模型,以获取泡沫弹丸的变形历史和运动学过程。结果表明,目标杆的弹性特性对冲击过程的持续时间和变形有显着影响。还表明,泡沫弹丸和目标棒的材料和几何参数,以及泡沫弹丸的初始速度对泡沫弹丸的冲击接触时间和最终变形有很大影响。本模型预测的泡沫弹丸的历史和最终变形与实验结果和有限元模拟进行了很好的比较。本分析提供了一种更准确的方法,可以利用泰勒-霍普金森检验来预测低密度泡沫材料的动态行为。 (C)2016 Elsevier Ltd.保留所有权利。

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