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首页> 外文期刊>Mechanics of Advanced Materials and Structures >Optimum Design of Segmented Passive-Constrained Layer Damping Treatment Through Genetic Algorithms
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Optimum Design of Segmented Passive-Constrained Layer Damping Treatment Through Genetic Algorithms

机译:基于遗传算法的分段被动约束层阻尼优化设计

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摘要

The optimization of geometry and material properties of Passive Constrained Layer Damping (PCLD) treatments has been the subject of many research efforts in recent years. In this study, a genetic algorithm is used to investigate the relationship of the viscoelastic layer thickness, the constraining layer thickness, and the number of cuts initiated in the PCLD treatment as they all relate to optimum damping of beams. Genetic algorithms mimic the biological evolution process where potential solutions compete for survival based on their relative fitness. As a measure of the fitness of the PCLD treatment, a finite element model is used to compute the loss factor for the first mode of vibration with the capability of segmenting the treatment. It is found that, while the loss factor increases asymptotically with the increase in the viscoelastic layer thickness, an optimum constraining layer thickness for each viscoelastic layer thickness exists. The number of cuts in the segmented treatment tends to decrease with increasing thickness of the damping treatment. Furthermore, it was found that the optimum constraining layer thickness decreases with increasing the thickness of the viscoelastic layer. Physical insight is shed on all observations made which makes future optimization of PCLD treatment more focused in terms of criteria and goals.
机译:近年来,无源约束层阻尼(PCLD)处理的几何形状和材料性能的优化一直是许多研究工作的主题。在这项研究中,使用遗传算法来研究粘弹性层厚度,约束层厚度以及在PCLD处理中引发的切口数量的关系,因为它们都与梁的最佳阻尼相关。遗传算法模仿生物进化过程,其中潜在的解决方案根据其相对适合度竞争生存。为了衡量PCLD治疗的适用性,使用了有限元模型来计算具有分割治疗能力的第一振动模式的损耗因子。已经发现,虽然损耗因子随着粘弹性层厚度的增加而渐进地增加,但是对于每种粘弹性层厚度而言存在最佳约束层厚度。分段处理中的切口数量倾向于随着阻尼处理厚度的增加而减少。此外,发现最佳约束层厚度随着粘弹性层厚度的增加而减小。物理洞察力取决于所有观察到的结果,这使PCLD治疗的未来优化在标准和目标方面更加集中。

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