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Design optimization of vibration isolation system through minimization of vibration power flow

机译:通过最小化振动功率流来优化隔振系统的设计

摘要

A vibration power minimization model is developed, based on the mobility matrix method, for a vibration isolation system consisting of a vibrating source placed on an elastic support structure through multiple resilient mounts. This model is applied to investigate the design optimization of an X-Y motion stage-based vibration isolation system used in semiconductor wire-bonding equipment. By varying the stiffness coefficients of the resilient mounts while constraining the dynamic displacement amplitudes of the X-Y motion stage, the total power flow from the X-Y motion stage (the vibrating source) to the equipment table (the elastic support structure) is minimized at each frequency interval in the concerned frequency range for different stiffnesses of the equipment table. The results show that when the equipment table is relatively flexible, the optimal design based on the proposed vibration power minimization model gives significantly little power flow than that obtained using a conventional vibration force minimization model at some critical frequencies. When the equipment table is rigid enough, both models provide almost the same predictions on the total power flow.
机译:基于迁移率矩阵方法,为振动隔离系统开发了一种振动最小化模型,该振动隔离系统由振动源组成,该振动源通过多个弹性支座放置在弹性支撑结构上。该模型用于研究半导体引线键合设备中基于X-Y运动平台的隔振系统的设计优化。通过在限制XY运动平台的动态位移幅度的同时改变弹性底座的刚度系数,在每个频率下从XY运动平台(振动源)到设备台(弹性支撑结构)的总功率流被最小化。设备表的不同刚度在相关频率范围内的间隔。结果表明,当设备表相对灵活时,基于建议的振动功率最小化模型的优化设计在某些临界频率下的功率流要比使用常规振动力最小化模型获得的功率流小得多。当设备台足够坚固时,两个模型对总功率流的预测几乎相同。

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