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Topology optimization of dissipative metamaterials at finite strains based on nonlinear homogenization

机译:基于非线性均质化的有限菌株耗散超材料的拓扑优化

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摘要

This study presents a novel computational framework for designing optimal dissipative (damping) metamaterials under time-dependent loading conditions at finite deformations. In this framework, finite strain computational homogenization is integrated with a density-based multimaterial topology optimization. In addition, a thermodynamically consistent finite strain viscoelasticity model is incorporated together with an analytical path-dependent sensitivity analysis. Optimization formulations with and without stiffness and mass constraints are considered, and various new damping metamaterial designs are obtained that combine soft viscoelastic and stiff hyperelastic material phases. Multiscale stability analysis using the Bloch wave analysis and rank-1 convexity checks is also carried out to investigate stability of the optimized designs. Stability analyses demonstrate that the inclusion of voids or soft material phases can make a metamaterial more prone to lose micro and macro-stability. Furthermore, the concept of tunable metamaterials is explored wherein metamaterial's response is steered towards a stable deformation path by tailoring the design with a preselected micro buckling mode.
机译:本研究提出了一种新颖的计算框架,用于在有限变形下在时间依赖性的负载条件下设计最佳耗散(阻尼)超材料。在该框架中,有限应变计算均质化与基于密度的多国拓扑优化集成。另外,热力学一致的有限菌株粘弹性模型与分析路径依赖性敏感性分析结合在一起。考虑了具有和不具有刚度和质量约束的优化制剂,并获得了各种新的阻尼超弹性材料相结合的耐粘弹性和抗硬化材料相。多尺度稳定性分析使用BLOCH波分析和秩-1凸起检查,以研究优化设计的稳定性。稳定性分析表明包含空隙或软材料相可以使超材料更容易失去微观和宏观稳定性。此外,探索可调谐超材料的概念,其中通过用预选的微屈曲模式剪裁设计来朝向稳定的变形路径朝向稳定的变形路径转向。

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