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Optimization of segmented constrained layer damping with mathematical programming using strain energy analysis and modal data

机译:使用应变能分析和模态数据的数学编程优化分段约束层阻尼

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摘要

A new method for enhancement of clamping capabilities of segmented constrained layer damping material is proposed. Constrained layer damping has been extensively used since many years to damp flexural vibrations. The shear deformation occurring in the viscoelastic core is mainly responsible for the dissipa-tion of energy. Cutting both the constraining and the constrained layer, which leads to segmentation, increases the shear deformation at that position. This phenomenon is called edge effect. A two-dimen-sional model of a cantilever beam has been realized for further investigations. An optimization algorithm using mathematical programming is developed in order to identify a cuts arrangement that optimizes the loss factor. The damping efficiency is estimated using the modal strain energy method. The Nelder-Mead simplex method is used to find the best distribution of cuts. In order to take into account geometrical limitations, the exterior point penalty method is used to transform the constrained objective function into an unconstrained objective function. As the optimization problem is not convex, a modal analysis is performed at each mode in order to identify initial cuts positions that lead to a global minimum. Over a large frequency range, the algorithm is able to identify a distribution of cuts that optimizes the loss factor of each mode under consideration.
机译:提出了一种提高分段约束层阻尼材料夹持能力的新方法。约束层阻尼已被广泛使用,以抑制弯曲振动。粘弹性芯中发生的剪切变形主要是能量耗散的原因。切割约束层和约束层均会导致分段,从而增加了该位置处的剪切变形。这种现象称为边缘效应。悬臂梁的二维模型已经实现,需要进一步研究。开发了一种使用数学程序设计的优化算法,以识别优化损耗因子的切割方式。使用模态应变能方法估计阻尼效率。 Nelder-Mead单纯形法用于找到最佳切口分布。为了考虑几何限制,使用外点罚分法将受约束的目标函数转换为无约束的目标函数。由于优化问题不是凸面的,因此在每种模式下都要进行模态分析,以识别导致整体最小值的初始切割位置。在较大的频率范围内,该算法能够识别切割的分布,从而优化所考虑的每种模式的损耗因子。

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