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Evolutionary topology optimization for natural frequency maximization problems considering acoustic-structure interaction

机译:考虑声学-结构相互作用的自然频率最大化问题的进化拓扑优化

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This paper aims to extend the evolutionary methods of topology optimization to free vibration problems of acoustic-structure systems. The interacting fluid and structure fields are governed by the acoustic wave equation and the linear elasticity, respectively. Both domains are solved with the Unite element method. The coupling conditions are the equilibrium and kinematic compatibility at the acousticstructure interfaces. The proposed bi-directional evolutionary structural optimization (BESO) method seeks to maximize the first natural frequencies of the acoustic-structural model by switching elements into solid, fluid or void condition, It allows the acoustic-structure boundaries to be modeled and modified straightforwardly, addressing design-dependent loads on the topology optimization problem with simple finite element formulations. The proposed methodology extension is justified by various possible applications to free vibration of acoustic-structure systems such as tanks/reservoirs, acousticstructural devices, passengers compartments in automobiles and aircrafts and pipelines. Numerical results show that the evolutionary methods can be applied to this kind of multiphysics problem effectively and efficiently. (C) 2015 Elsevier B.V. All rights reserved
机译:本文旨在将拓扑优化的进化方法扩展到声学结构系统的自由振动问题。相互作用的流体场和结构场分别由声波方程和线性弹性控制。这两个域均使用Unite元素方法求解。耦合条件是声学结构界面处的平衡和运动学相容性。所提出的双向进化结构优化(BESO)方法试图通过将元素切换为固体,流体或空隙条件来最大化声学结构模型的第一个固有频率,它允许对声学结构边界进行直接建模和修改,用简单的有限元公式解决拓扑优化问题上与设计有关的负载。提议的方法扩展可以通过各种可能的应用来证明,这些应用可以自由振动声学结构系统,例如油箱/油箱,声学结构设备,汽车,飞机上的乘客舱以及管道。数值结果表明,进化方法可以有效地应用于这类多物理场问题。 (C)2015 Elsevier B.V.保留所有权利

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