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Explicit and efficient topology optimization of frequency-dependent damping patches using moving morphable components and reduced-order models

机译:使用移动可变形组件和降阶模型对频率相关的阻尼贴片进行显式且有效的拓扑优化

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Viscoelastic materials have been widely applied as the lightweight structures are growingly used in many industrial sectors in order to improve the cost-efficiency of products. The present work is devoted to minimize the kinetic energy of thin-shell structures subjected to harmonic excitations within a certain frequency range by seeking the optimal layouts of frequency-dependent viscoelastic damping patches under a prescribed area constraint. An explicit topology optimization approach based on the moving morphable components (MMC) is applied, where the number of design variables is substantially reduced compared to the traditional density-based implicit framework. This is achieved by introducing a set of geometry parameters (i.e. design variables) to explicitly describe the boundary of structural components which are viscoelastic patches in this paper. Meanwhile, the unnecessary degrees of freedom (DOFs) related to void regions from the finite element (FE) model are removed at every step of numerical optimization thanks to the explicit boundary evolution. The adjoint method is adopted to derive the sensitivity of the objective function with respect to a design variable. Furthermore, an adaptive model order reduction (MOR) technique for the frequency-dependent system is provided to simplify the computational complexity of the dynamical equation and the adjoint equation as well. With the MMC to reduce the number of design variables in the topology formulation and the MOR to reduce the number of DOFs in the FE model, the optimization simulation can be largely sped up. Numerical examples are presented to demonstrate that the combination of the MMC- and MOR-technique is able to distribute constrained-layer damping patches reasonably and very efficiently. (C) 2019 Elsevier B.V. All rights reserved.
机译:粘弹性材料已被广泛应用,因为轻质结构在许多工业领域中越来越多地使用,以提高产品的成本效益。本工作致力于通过在规定的面积约束下寻找频率相关的粘弹性阻尼贴片的最佳布局,来使在一定频率范围内经受谐波激励的薄壳结构的动能最小化。应用了基于移动可变形组件(MMC)的显式拓扑优化方法,与传统的基于密度的隐式框架相比,设计变量的数量大大减少了。这是通过引入一组几何参数(即设计变量)来明确描述本文为粘弹性斑块的结构部件的边界来实现的。同时,由于显式的边界演化,在数值优化的每个步骤中都消除了与有限元(FE)模型中的空隙区域相关的不必要的自由度(DOF)。采用伴随法来推导目标函数对设计变量的敏感性。此外,提供了一种针对频率相关系统的自适应模型降阶(MOR)技术,以简化动力学方程和伴随方程的计算复杂性。使用MMC减少拓扑结构公式中的设计变量数量,以及使用MOR减少FE模型中的自由度数量,可以极大地加速优化仿真。数值算例表明,MMC和MOR技术的结合能够合理有效地分布约束层阻尼片。 (C)2019 Elsevier B.V.保留所有权利。

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