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A method using successive iteration of analysis and design for large-scale topology optimization considering eigenfrequencies

机译:一种考虑特征频率的采用连续迭代分析与设计的大规模拓扑优化方法

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Repeatedly solving the generalized eigenvalue problems by far dominates the computational cost in large-scale topology optimization involving natural frequency constraints. This study proposes a method for dynamic topology optimization problems considering natural frequencies using successively executed iterations for the structural analysis and design. By using the Rayleigh quotients as approximations of the natural frequencies and achieving sequential approximation of the eigenpairs through inverse iteration-like procedures to improve the eigenvectors along with the topological evolution of the structure, the method avoids solving the time-consuming eigenvalue problem in each design iteration. This makes the method particularly suitable for large-scale frequency-constrained topology optimization problems. The convergence property of the method is analyzed under the assumption of sufficiently small design changes between two successive design iterations. Numerical examples regarding frequency and frequency gap constraints show that this method is able to realize concurrent convergence of the eigenvalue analysis and design optimization, and is more efficient than the conventional double-loop approach. (C) 2020 Elsevier B.V. All rights reserved.
机译:到目前为止,反复解决广义特征值问题占据了涉及自然频率约束的大规模拓扑优化的计算成本。本研究提出了一种考虑自然频率的动态拓扑优化问题的方法,该方法使用连续执行的迭代进行结构分析和设计。通过使用瑞利商作为自然频率的近似值,并通过类似逆迭代的过程实现特征对的顺序近似,以改进特征向量以及结构的拓扑演化,该方法避免了解决每个设计中费时的特征值问题迭代。这使得该方法特别适合于大规模的频率受限的拓扑优化问题。在两次连续设计迭代之间的设计更改足够小的假设下,分析了该方法的收敛性。有关频率和频率间隙约束的数值例子表明,该方法能够实现特征值分析和设计优化的并发收敛,并且比传统的双环方法更有效。 (C)2020 Elsevier B.V.保留所有权利。

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