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Microstructure-based hyperelastic models for closed-cell solids

机译:基于微结构的闭孔固体超弹性模型

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摘要

For cellular bodies involving large elastic deformations, mesoscopic continuum models that take into account the interplay between the geometry and the microstructural responses of the constituents are developed, analysed and compared with finite-element simulations of cellular structures with different architecture. For these models, constitutive restrictions for the physical plausibility of the material responses are established, and global descriptors such as nonlinear elastic and shear moduli and Poisson’s ratio are obtained from the material characteristics of the constituents. Numerical results show that these models capture well the mechanical responses of finite-element simulations for three-dimensional periodic structures of neo-Hookean material with closed cells under large tension. In particular, the mesoscopic models predict the macroscopic stiffening of the structure when the stiffness of the cell-core increases.
机译:对于涉及大的弹性变形的蜂窝体,开发,分析了介观连续体模型,这些模型考虑了组成部分的几何形状和微结构响应之间的相互作用,并与具有不同结构的蜂窝结构的有限元模拟进行了比较。对于这些模型,建立了对材料响应的物理合理性的本构限制,并从这些组分的材料特性获得了全局描述符,例如非线性弹性模量和剪切模量以及泊松比。数值结果表明,这些模型很好地捕捉了具有大拉力的闭孔单元新新材料的三维周期性结构的有限元模拟的力学响应。特别地,介观模型在单元芯的刚度增加时预测结构的宏观刚度。

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