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Computational design of finite strain auxetic metamaterials via topology optimization and nonlinear homogenization

机译:基于拓扑优化和非线性均质化的有限应变拉力超材料的计算设计

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A novel computational framework for designing metamaterials with negative Poisson's ratio over a large strain range is presented in this work by combining the density-based topology optimization together with a mixed stress/deformation driven nonlinear homogenization method. A measure of Poisson's ratio based on the macro deformations is proposed, which is further validated through direct numerical simulations. With the consistent optimization formulations based on nonlinear homogenization, auxetic metamaterial designs with respect to different loading orientations and with different unit cell domains are systematically explored. In addition, the extension to multimaterial auxetic metamaterial designs is also considered, and stable optimization formulations are presented to obtain discrete metamaterial topologies under finite strains. Various new auxetic designs are obtained based on the proposed framework. To validate the performance of optimized designs, a multiscale stability analysis is carried out using the Bloch analysis and rank-one convexity check. As demonstrated, short and/or long wavelength instabilities can occur during the loading process, leading to a change of periodicity of the microstructure, which can affect the performance of an optimized design. (C) 2019 Elsevier B.V. All rights reserved.
机译:通过将基于密度的拓扑优化与混合应力/变形驱动的非线性均化方法相结合,提出了一种用于在大应变范围内设计具有负泊松比的超材料的新颖计算框架。提出了一种基于宏观变形的泊松比度量,并通过直接数值模拟对其进行了进一步验证。借助基于非线性均质化的一致优化公式,系统地探索了针对不同载荷方向和不同晶胞域的膨胀超材料设计。此外,还考虑了扩展到多材料膨胀超材料的设计,并提出了稳定的优化公式来获得有限应变下的离散超材料拓扑。在提出的框架的基础上获得了各种新的声学设计。为了验证优化设计的性能,使用Bloch分析和秩一凸度检查进行了多尺度稳定性分析。如图所示,在加载过程中可能会发生短波长和/或长波长不稳定性,从而导致微结构的周期性变化,从而影响优化设计的性能。 (C)2019 Elsevier B.V.保留所有权利。

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