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Macroscopic mechanical response of chiral-type cylindrical metastructures under axial compression loading

机译:轴向压缩载荷下手性型圆柱亚结构的宏观力学响应

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Chiral cellular structures inspired by the microstructure of biomaterials can display auxetic performances, such as negative Poisson's ratio (NPR), negative stiffness, energy dissipation, and acoustic absorption. In this study, novel chiral-type cylindrical shells were designed and fabricated via 3D printing method. Theoretical analysis, finite element analysis, and experiments were conducted to investigate the mechanical properties and deformation characteristics of cylindrical shell with various categories of chiral-type cells. Results revealed that the anti-chiral shell and chiral-axial shell can achieve auxetic behavior, namely, NPR behavior and compressive-twist response, which are beneficial for energy absorption and vibration isolation performance. Given the distinction in the geometrical configuration of unit cell, the cylindrical shells exhibited extremely diverse mechanical properties. The analytical formulae of axial compressive modulus were deduced based on Euler-Bernoulli beam theory, and the applicability and accuracy were verified. The new mechanical metastructures offer potential applications as smart actuators, biomechanical devices, and sensors in various industries. (C) 2018 Elsevier Ltd. All rights reserved.
机译:受生物材料的微观结构启发的手性细胞结构可以显示出发胀性能,例如负泊松比(NPR),负刚度,能量耗散和吸声。在这项研究中,通过3D打印方法设计和制造了新型手性圆柱壳。进行了理论分析,有限元分析和实验,以研究具有各种类型手性细胞的圆柱壳的力学性能和变形特性。结果表明,抗手性壳和手性轴壳可达到膨胀行为,即NPR行为和压扭响应,有利于能量吸收和隔振性能。考虑到晶胞的几何构型的区别,圆柱壳表现出极为不同的机械性能。根据欧拉-伯努利梁理论推导了轴向压缩模量的解析公式,并验证了其适用性和准确性。新的机械元结构为各种行业的智能执行器,生物力学设备和传感器提供了潜在的应用。 (C)2018 Elsevier Ltd.保留所有权利。

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