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High velocity impact mitigation with gradient cellular solids

机译:梯度多孔固体可减轻高速冲击

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摘要

The dynamic behavior of gradient cellular solids subjected to high velocity impact is investigated, with shock theory and rigid-perfectly-plastic-locking idealization. The impact is induced by the fragments of a cased charge explosion in near field, sufficiently high to progressively crush the cellular solids from the loading part, regardless of the density variation of the cellular solids. The dynamic response and energy absorption are examined for different gradient cellular solid layers with the same mass and thickness, but different density variation. The cellular solids with larger density gradient lead to smaller crushed distance and higher energy absorption compared to those with smaller density gradients, when subjected to the same impact, provided that the cellular solid is not fully densified. However, when the cellular layer is fully crushed, the effect of density variation on energy absorption vanishes. (C) 2015 Elsevier Ltd. All rights reserved.
机译:利用冲击理论和刚性-完全塑性锁定理想化研究了梯度多孔固体在高速冲击下的动力学行为。撞击是由近场中的盒装炸药爆炸的碎片引起的,其高到足以从装载部分逐渐压碎细胞固体,而与细胞固体的密度变化无关。对于具有相同质量和厚度但密度变化不同的不同梯度多孔固体层,研究了其动态响应和能量吸收。与密度梯度较小的蜂窝状固体相比,当受到相同的冲击时,如果蜂窝状固体未完全致密化,则其具有较小的压碎距离和更高的能量吸收。但是,当细胞层被完全压碎时,密度变化对能量吸收的影响就消失了。 (C)2015 Elsevier Ltd.保留所有权利。

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