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Maximizing modal damping in layered structures via multi-objective topology optimization

机译:通过多目标拓扑优化最大化分层结构中的模态阻尼

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This paper presents a study on maximizing single and multiple modal damping ratios (MDR) of a structure by finding the optimal layouts of damping and/or base materials using an extended moving iso-surface threshold (MIST) topology optimization. Firstly, by using the Lagrange's equation, a general formulation of loss factor is derived and then used to extract MDR for classical and non-classical damping. Secondly, in the extended MIST, new general formulations for the physical response functions of individual mode are derived for the classical non-local damping and the non-classical damping, in which for non-classical damping modal strain energy (MSE) is used to estimate MDR and derive physical response function. Thirdly, to maximize multiple MDRs simultaneously or overcome the mode switching issue, a multi-objective optimization strategy is developed; and a concurrent design optimization of both base and damping layer is proposed to maximize MDR. Finally several numerical examples are presented to validate and illustrate the efficiency of the present extended MIST approach. (C) 2016 Elsevier Ltd. All rights reserved.
机译:本文提出了一项研究,通过使用扩展的移动等值面阈值(MIST)拓扑优化来查找阻尼和/或基础材料的最佳布局,从而最大化结构的单模态阻尼比(MDR)。首先,通过使用拉格朗日方程,导出损耗因子的一般公式,然后用于提取经典和非经典阻尼的MDR。其次,在扩展的MIST中,针对经典的非局部阻尼和非经典的阻尼,推导了用于单个模式的物理响应函数的新通用公式,其中对于非经典的阻尼,模态应变能(MSE)用于估计MDR并得出物理反应函数。第三,为了同时最大化多个MDR或克服模式切换问题,开发了一种多目标优化策略。并提出了基础层和阻尼层的并行设计优化,以最大化MDR。最后,给出了几个数值示例,以验证和说明本扩展MIST方法的效率。 (C)2016 Elsevier Ltd.保留所有权利。

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