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嵌入软质基体的可重构六边形网络中顺序屈曲的出现

The Emergence of Sequential Buckling in Reconfigurable Hexagonal Networks Embedded into Soft Matrix.

作者信息

Galich Pavel I, Sharipova Aliya, Slesarenko Slava

机构信息

Department of Aerospace Engineering, Technion-Israel Institute of Technology, Haifa 32000, Israel.

Institute of Strength Physics and Materials Science, SB RAS, 634055 Tomsk, Russia.

出版信息

Materials (Basel). 2021 Apr 18;14(8):2038. doi: 10.3390/ma14082038.

Abstract

The extreme and unconventional properties of mechanical metamaterials originate in their sophisticated internal architectures. Traditionally, the architecture of mechanical metamaterials is decided on in the design stage and cannot be altered after fabrication. However, the phenomenon of elastic instability, usually accompanied by a reconfiguration in periodic lattices, can be harnessed to alter their mechanical properties. Here, we study the behavior of mechanical metamaterials consisting of hexagonal networks embedded into a soft matrix. Using finite element analysis, we reveal that under specific conditions, such metamaterials can undergo sequential buckling at two different strain levels. While the first reconfiguration keeps the periodicity of the metamaterial intact, the secondary buckling is accompanied by the change in the global periodicity and formation of a new periodic unit cell. We reveal that the critical strains for the first and the second buckling depend on the metamaterial geometry and the ratio between elastic moduli. Moreover, we demonstrate that the buckling behavior can be further controlled by the placement of the rigid circular inclusions in the rotation centers of order 6. The observed sequential buckling in bulk metamaterials can provide additional routes to program their mechanical behavior and control the propagation of elastic waves.

摘要

机械超材料的极端和非常规特性源于其复杂的内部结构。传统上,机械超材料的结构在设计阶段就已确定,制造后无法改变。然而,弹性失稳现象(通常伴随着周期性晶格的重新配置)可被利用来改变其机械性能。在此,我们研究了由嵌入软基体的六边形网络组成的机械超材料的行为。通过有限元分析,我们发现,在特定条件下,此类超材料可在两个不同应变水平下发生连续屈曲。虽然第一次重新配置使超材料的周期性保持完整,但二次屈曲伴随着整体周期性的变化和新周期性单胞的形成。我们发现,第一次和第二次屈曲的临界应变取决于超材料的几何形状以及弹性模量之间的比率。此外,我们证明,通过在六阶旋转中心放置刚性圆形内含物,可进一步控制屈曲行为。在块状超材料中观察到的连续屈曲可为编程其机械行为和控制弹性波传播提供额外途径。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/b41f/8073188/de8d70ffc44c/materials-14-02038-g001.jpg

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