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首页> 外文期刊>Journal of vibration and control: JVC >Vibration suppression using integrated topology optimization of host structures and damping layers
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Vibration suppression using integrated topology optimization of host structures and damping layers

机译:使用主体结构和阻尼层的集成拓扑优化来抑制振动

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It is often desirable to simultaneously optimize the damping and stiffness distribution in the design of shell structures incorporating damping material layers for achieving the best vibration mitigation performance. This paper investigates the integrated topology optimization of host structures and damping layers for reducing the vibration level in the presence of harmonic excitations. Therein, the global damping matrix is a nonproportional one due to distributed damping effects. For an efficient frequency response analysis of the system with nonproportional damping, reduced-order equations are obtained by using lower-order eigenvectors of the undamped system, and then the method of complex mode superposition is employed for solving the dynamic equations in the state space. In the optimization model, the vibration amplitudes at specified positions are taken as the objective function. The relative densities of the elements are considered as design variables, and an artificial damping material model relating the local damping properties to the elemental density variables is employed. The Rational Approximation of Material Properties model is adopted to avoid localized modes in low-density areas during the optimization process. Numerical examples are presented to illustrate the effectiveness and efficiency of the proposed framework.
机译:通常期望在结合有阻尼材料层的壳体结构的设计中同时优化阻尼和刚度分布,以实现最佳的减振性能。本文研究了主体结构和阻尼层的集成拓扑优化,以降低存在谐波激励时的振动水平。其中,全局阻尼矩阵由于分布阻尼效应而为非比例矩阵。为了对非比例阻尼系统进行有效的频率响应分析,利用无阻尼系统的低阶特征向量求出降阶方程,然后采用复模叠加法求解状态空间中的动力学方程。在优化模型中,将指定位置的振动幅度作为目标函数。单元的相对密度被视为设计变量,并且采用了将局部阻尼特性与单元密度变量相关联的人工阻尼材料模型。在优化过程中,采用“材料特性的合理逼近”模型来避免在低密度区域中出现局部化模式。数值例子说明了所提出框架的有效性和效率。

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