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Robust topology optimization of multi-material structures under load uncertainty using the alternating active-phase method

机译:使用交替的活动相法使用负载不确定性的多重材料结构的鲁棒拓扑优化

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The synergy between different constituent materials can drastically improve the performance of composite structures. The optimal design of such structures for practical applications is complicated by the oftenencountered non-deterministic loading conditions. This paper proposes an efficient method for robust multimaterial topology optimization problems of continuum structures under load uncertainty. Specifically, the weighted sum of the mean and standard deviation of structural compliance is minimized under volume constraints for each material phase. Based on the theory of linear elasticity and using the orthogonal diagonalization of real symmetric matrices, the Monte Carlo sampling is separated from the topology optimization procedure and an efficient procedure for sensitivity analysis is established. By employing an alternating active-phase algorithm of the Gauss-Seidel version, the multi-material topology optimization problem is split into a series of binary topology optimization sub-problems, which can be easily solved using the modified SIMP model. Several 2D examples are presented to demonstrate the effectiveness of the proposed method.
机译:不同组成材料之间的协同作用可以大大提高复合结构的性能。这种结构的最佳设计对于实际应用的结构是经常造成的非确定性负载条件的复杂性。本文提出了载荷不确定性下连续结构的鲁棒多国拓扑优化问题的有效方法。具体地,结构顺应性的平均值和标准偏差的加权和在每个材料阶段的体积约束下最小化。基于线性弹性理论和使用真实对称矩阵的正交对角化,蒙特卡罗采样与拓扑优化过程分离,建立了敏感性分析的有效过程。通过采用高斯-Seidel版本的交替活动阶段算法,多层拓扑优化问题被分成一系列二进制拓扑优化子问题,可以使用修改的SIMP模型轻松解决。提出了几个2D实例以证明所提出的方法的有效性。

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