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首页> 外文期刊>Journal of vibration and control: JVC >A two-level procedure for the global optimization of the damping behavior of composite laminated plates with elastomer patches
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A two-level procedure for the global optimization of the damping behavior of composite laminated plates with elastomer patches

机译:全局优化带有弹性体补片的复合层合板阻尼行为的两级程序

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摘要

This work concerns a two-level procedure for the global optimum design of hybrid elastomer/composite modular structures. The goal of the procedure is the maximization of the first N-f modal loss factors of the structure, satisfying mechanical constraints on the weight and on the bending stiffness, feasibility constraints on the admissible moduli for the constitutive laminates, along with geometric constraints on the positions of the viscoelastic patches. At the first level of the procedure, the optimization of the damping behavior of the structure is carried out: the optimization variables at this stage are the number of elastomer patches (modules), as well as their geometrical parameters (position, thickness and diameter), along with the material and geometric parameters of the composite laminated structure (elastic moduli, thickness of the laminate). The composite structure supporting the elastomer patches is thus optimized using a free-material approach, via the polar representation of 2D elasticity, and the second level of the optimization consists in finding the laminate stacking sequence satisfying the optimal elastic moduli and thickness issued from the first step. The method is able to automatically determine the optimal number of modules and it does not need the introduction of any simplifying assumption. The proposed approach relies on one hand, on the application of the well-known Iterative Modal Strain Energy (IMSE) method for the evaluation of the dynamic response of the structure, and on the other hand on the use of the polar formalism for the representation of the elastic anisotropic behavior of composite laminates as well as of a genetic algorithm as optimization tool to perform the solution search. We will illustrate the application of our approach to the optimization of the damping behavior of a rectangular composite plate with a discontinuous aperiodic distribution of viscoelastic material. The numerical results show the effectiveness of the proposed strategy.
机译:这项工作涉及混合弹性体/复合模块化结构的全局最优设计的两级过程。该程序的目标是使结构的第一个Nf模态损耗因子最大化,同时满足重量和弯曲刚度的机械约束,以及本构层合板容许模量的可行性约束,以及结构位置的几何约束。粘弹性斑块。在该过程的第一级,对结构的阻尼行为进行了优化:此阶段的优化变量是弹性体贴片(模块)的数量及其几何参数(位置,厚度和直径) ,以及复合叠层结构的材料和几何参数(弹性模量,叠层厚度)。因此,通过二维弹性的极性表示,使用自由材料方法对支撑弹性体补丁的复合结构进行了优化,优化的第二个层次在于找到满足最佳弹性模量和第一层厚度的层压板堆叠顺序步。该方法能够自动确定模块的最佳数量,并且不需要引入任何简化假设。所提出的方法一方面依靠著名的迭代模态应变能(IMSE)方法对结构的动力响应进行评估,另一方面依靠极坐标形式表示法。复合材料层压板的弹性各向异性行为以及遗传算法作为执行求解搜索的优化工具。我们将举例说明我们的方法在具有粘弹性材料不连续非周期性分布的矩形复合板的阻尼性能优化中的应用。数值结果表明了所提策略的有效性。

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