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In-plane crushing behaviors of piecewise linear graded honeycombs

机译:分段线性渐变蜂窝的平面内破碎行为

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摘要

The cell-wall thickness induced and cell-wall angle induced piecewise linear graded honeycombs (PLGHs) are presented and investigated under in-plane compression. Effects of cell-wall angle on the strength of honeycombs are discussed. Results reveal that the normalized crushing strength displays similar variety to that of the shape ratio within a given range. Based on this, traditional theoretical models of plateau stresses are improved. Comparative studies on different kinds of PLGHs are conducted. Quasi-static and dynamic deformation mode, strength and energy absorption capacity are intensively discussed. Both weak-to-strong and top-to-bottom layerby-layer deformation mode are observed. Comparison of strain-stress curves shows that cell-wall angle induced PLGHs generally express lower level of stress than that of cell-wall thickness induced PLGHs under quasi-static compression, but the difference is insignificant as the crushing velocity increases. Theoretical prediction is also conducted to estimate the stress level under quasi-static and high crushing velocities. Both the constant velocity and initial velocity loadings are applied to studying the energy absorption capacity. It is interesting to note that cell-wall angle induced PLGHs shows a time saving characteristic as the normalized initial kinetic energy increases from 0.75 to 1, which has not been discovered in other types of honeycombs.
机译:提出并在平面内压缩下研究了孔壁厚度诱导和孔壁角诱导的分段线性梯度蜂窝(PLGH)。讨论了孔壁角度对蜂窝强度的影响。结果表明,归一化的抗压强度在给定范围内显示出与形状比相似的变化。在此基础上,对传统的高原应力理论模型进行了改进。对不同种类的PLGH进行了比较研究。集中讨论了准静态和动态变形模式,强度和能量吸收能力。观察到从弱到强和从上到下的逐层变形模式。应变-应力曲线的比较表明,在准静态压缩下,孔壁角度引起的PLGHs的应力水平通常比孔壁厚度引起的PLGHs的应力水平低,但随着破碎速度的增加,差异不明显。还进行了理论预测,以估计准静态和高破碎速度下的应力水平。恒定速度和初始速度载荷都用于研究能量吸收能力。有趣的是,当归一化的初始动能从0.75增加到1时,细胞壁角诱导的PLGH表现出节省时间的特性,这在其他类型的蜂窝中尚未发现。

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