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Multiscale eigenfrequency optimization of multimaterial lattice structures based on the asymptotic homogenization method

机译:基于渐近均质化方法的多电晶格结构多尺度特征频率优化

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摘要

Ultralight lattice structures exhibit excellent mechanical performance and have been used widely. In structural design, the fundamental frequency is highly important. Therefore, a multiscale topology optimization method was utilized to optimize the fundamental frequency of multimaterial lattice structures in this study. Two types of optimization problems were studied, namely, maximizing the natural fundamental frequency with mass constraints and minimizing compliance with frequency constraints. The Heaviside-penalty-based discrete material optimization method was adopted for the optimal selection of candidate materials. The asymptotic homogenization method was used to evaluate the equivalent macroscale properties according to the microstructure of the lattice material. To enable gradient optimization, sensitivities were outlined in detail. A density filter with a volume-preserving Heaviside projection was used to eliminate the risk of a checkerboard pattern and reduce the number of gray elements. A polynomial penalization scheme was employed to eliminate localized spurious eigenmodes in the low-density region. Finally, several numerical examples were performed to validate the proposed method. These numerical examples resulted in novel microstructural configurations with remarkably improved vibration resistance.
机译:超轻晶格结构表现出优异的机械性能,并被广泛使用。在结构设计中,基本频率非常重要。因此,利用多尺度拓扑优化方法来优化本研究中的多国格结构的基本频率。研究了两种类型的优化问题,即最大化了具有质量约束的自然基波频率,并最大限度地遵守频率约束。采用了全基于罚球的离散材料优化方法来实现候选材料的最佳选择。渐近均化方法用于根据晶格材料的微观结构评估等效的宏观摩擦性质。为了实现梯度优化,详细概述了敏感性。使用具有体积保存的密度过滤器来消除棋盘图案的风险并减少灰度元件的数量。使用多项式惩罚方案来消除低密度区域中的局部寄生伪征。最后,进行了几个数值例子以验证所提出的方法。这些数值实例导致新的微观结构配置,具有显着提高的抗振性。

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