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仿生细胞分层拓扑夹心结构的塑性挤压破坏

Plastic Crushing Failure of Bio-Inspired Cellular Hierarchical Topological Sandwich Core.

作者信息

Zhang Yuwu, Lin Yuliang, Li Xiangcheng

机构信息

College of Liberal Arts and Sciences, National University of Defence Technology, Changsha 410073, China.

出版信息

Materials (Basel). 2021 Sep 3;14(17):5040. doi: 10.3390/ma14175040.

Abstract

Bio-inspired self-similar hierarchical honeycombs are multifunctional cellular topologies used for resisting various loadings. However, the crushing behavior under large plastic deformation is still unknown. This paper investigates the in-plane compressive response of selective laser melting (SLM) fabricated hierarchical honeycombs. The effects of hierarchical order, relative density as well as constituent material are evaluated. The results show that at small deformation, the AlSi10Mg alloy hierarchical honeycombs show great advantages over the elastic modulus and compressive strength than 316L steel hierarchical honeycombs. As the relative density and hierarchical order increase, the failure mechanism of AlSi10Mg alloy honeycombs gradually changes from a bending-dominated mode to a fracture-dominated mode; whereas all the 316L steel honeycombs fail due to the distortion of original unit cells. At large deformation, the AlSi10Mg alloy honeycombs behave with brittle responses, while the 316L steel honeycombs exhibit ductile responses, showing a negative Poisson's ratio behavior and gradient deformation of hierarchical unit cells. The addition of unit cell refinements improves the elastic modulus of AlSi10Mg alloy honeycombs and advances the densification of 316L steel honeycombs. In addition, the effect of constituent material on the compressive response of hierarchical honeycombs has been discussed. This study facilitates the development and future potential application of multifunctional ultra-light sandwich structures.

摘要

受生物启发的自相似分级蜂窝是用于抵抗各种载荷的多功能细胞拓扑结构。然而,大塑性变形下的压缩行为仍然未知。本文研究了选择性激光熔化(SLM)制造的分级蜂窝的面内压缩响应。评估了分级顺序、相对密度以及组成材料的影响。结果表明,在小变形时,AlSi10Mg合金分级蜂窝在弹性模量和抗压强度方面比316L钢分级蜂窝具有很大优势。随着相对密度和分级顺序的增加,AlSi10Mg合金蜂窝的失效机制逐渐从弯曲主导模式转变为断裂主导模式;而所有316L钢蜂窝均因原始单胞的变形而失效。在大变形时,AlSi10Mg合金蜂窝表现出脆性响应,而316L钢蜂窝表现出延性响应,呈现出负泊松比行为和分级单胞的梯度变形。添加细化的单胞提高了AlSi10Mg合金蜂窝的弹性模量,并促进了316L钢蜂窝的致密化。此外,还讨论了组成材料对分级蜂窝压缩响应的影响。本研究有助于多功能超轻夹层结构的发展及其未来的潜在应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4f08/8434584/4d9e4864831b/materials-14-05040-g001.jpg

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