Architecting materials for extremal stiffness, yield, and buckling strength

Fengwen Wang, Ole Sigmund
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引用次数: 3

Abstract

Abstract This paper proposes a methodology for architecting microstructures with extremal stiffness, yield, and buckling strength using topology optimisation. The optimised microstructures reveal an interesting transition from simple lattice-like structures for yield-dominated situations to hierarchical lattice structures for buckling-dominated situations. The transition from simple to hierarchical is governed by the relative yield strength of the constituent base material as well as the volume fraction. The overall performances of the optimised microstructures indicate that maximum strength is determined by the buckling strength at low-volume fractions and yield strength at higher-volume fractions, regardless of the base material’s relative yield strength. The non-normalised properties of the optimised microstructures show that higher base material Young’s modulus leads to both higher Young’s modulus and strength of the architected microstructures. Furthermore, the polynomial order of the maximum strength lines with respect to mass density obtained from the optimised microstructures reduces as base material relative yield strength decreases, reducing from 2.3 for buckling-dominated thermoplastic polyurethane to 1 for yield-dominated steel microstructures.
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建筑材料的极限刚度,屈服和屈曲强度
摘要:本文提出了一种利用拓扑优化来构建具有极限刚度、屈服和屈曲强度的微结构的方法。优化的微结构揭示了一个有趣的转变,从屈服主导情况下的简单晶格状结构到屈曲主导情况下的分层晶格结构。从简单到分层的转变是由组成基础材料的相对屈服强度以及体积分数决定的。优化微结构的整体性能表明,最大强度取决于低体积分数的屈曲强度和高体积分数的屈服强度,而与基材的相对屈服强度无关。优化微结构的非归一化性能表明,较高的基材杨氏模量会导致更高的杨氏模量和结构微结构的强度。此外,从优化微结构中获得的最大强度线与质量密度的多项式阶数随着基材相对屈服强度的降低而降低,从以屈曲为主的热塑性聚氨酯的2.3降至以屈服为主的钢微结构的1。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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