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Topology optimization using material-field series expansion and Kriging-based algorithm: An effective non-gradient method

机译:拓扑优化采用材质串联扩展和基于Kriging的算法:一种有效的非梯度方法

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Topology optimization is now a very effective and important tool for designing the layouts of various structural and multidisciplinary problems, but most existing methods require information about the sensitivity of the performance function with respect to an enormous number of design variables. This paper presents an efficient non-gradient approach to the topology optimization of structures when no information is available about design sensitivity. Based on the material-field series expansion (MFSE), the problem of topology optimization is constructed as a constrained minimization model with the series expansion coefficients as the design variables, thereby involving a considerable reduction of design variables. The Kriging-based optimization algorithm incorporating two infill criteria is used to solve the optimization problem. A special strategy of (i) using a self-adjusting design domain and (ii) remodeling the surrogate function is proposed to improve the searching efficiency of the Kriging-based algorithm. Several examples are given in the form of linear, nonlinear, and fluid topology optimization problems to demonstrate the effectiveness and applicability of the proposed Kriging-based MFSE method. (C) 2020 Elsevier B.V. All rights reserved.
机译:拓扑优化现在是设计各种结构和多学科问题的布局的非常有效和重要的工具,但大多数现有方法需要关于巨大数量的设计变量的性能函数的灵敏度的信息。本文在无信息概述设计敏感性时,介绍了结构拓扑优化的有效的非渐变方法。基于材料场串联扩展(MFSE),拓扑优化问题被构造为具有串联膨胀系数作为设计变量的约束最小化模型,从而涉及设计变量的相当大降低。包含两个填写标准的基于Kriging的优化算法用于解决优化问题。 (i)使用自调节设计域的特殊策略和(ii)改造了代理功能,以提高基于Kriging的算法的搜索效率。以线性,非线性和流体拓扑优化问题的形式给出了几个例子,以证明所提出的基于Kriging的MFSE方法的有效性和适用性。 (c)2020 Elsevier B.v.保留所有权利。

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