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首页> 外文期刊>Journal of Materials Science >Post-peak collapse and energy absorption in stochastic honeycombs
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Post-peak collapse and energy absorption in stochastic honeycombs

机译:随机蜂窝的峰值后崩溃和能量吸收

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Stochastic honeycombs are a random, open cell honeycomb produced through a novel melt-stretching operation. While they have been shown to have excellent mechanical properties under out-of-plane compression, the energy absorption capacity of this cellular material has not yet been examined. The energy absorbed was determined over several of the integration intervals proposed in the literature as a function of density. For two intervals, the relationship between energy and density was linear, and for the other two, the rate of change in volumetric energy absorption capacity with density began to decrease at higher densities. This change happened at a core relative density of 11 %. Additionally, the post-peak collapse mechanisms of four sample sets of varying density were compressed and scanned sequentially through X-ray tomography after preloading to various characteristic strain values. Webs were classified on the basis of their connectivity (bound on both sides or bound on one and free on the other). Unlike conventional honeycombs where all webs undergo the same failure mechanism, the range in geometry of the webs within a given sample led to a range of collapse mechanisms: elastic buckling, plastic buckling, and plastic buckling with fracture. At lower density, all three failure modes could be present in the same sample. At higher density, plastic buckling accompanied by web fracture was the main mode of failure.
机译:随机蜂窝是通过新颖的熔融拉伸操作生产的无规,开孔蜂窝。尽管已显示它们在平面外压缩下具有出色的机械性能,但尚未检查这种多孔材料的能量吸收能力。在文献中提出的几个积分间隔中,确定吸收的能量作为密度的函数。对于两个间隔,能量与密度之间的关系是线性的,而对于其他两个间隔,在较高密度下,体积能量吸收容量随密度的变化率开始减小。这种变化发生在核心相对密度为11%的情况下。此外,在预加载到各种特征应变值后,压缩并扫描了四个密度变化的四个样本集的峰后坍塌机制。 Web是根据其连接性进行分类的(两面绑定,一面绑定,另一面免费)。与传统的蜂窝状结构不同,传统的蜂窝状结构的所有腹板都具有相同的破坏机理,给定样品中腹板的几何形状范围导致了一系列塌陷机制:弹性屈曲,塑性屈曲和具有断裂的塑性屈曲。在较低的密度下,所有三种故障模式都可能出现在同一样本中。在较高的密度下,塑性屈曲伴随腹板断裂是主要的破坏方式。

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