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OPTIMIZATION OF PASSIVE AND ACTIVE NON-LINEAR VIBRATION MOUNTING SYSTEMS BASED ON VIBRATORY POWER TRANSMISSION

机译:基于振动功率传递的无源与有源非线性振动系统优化

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摘要

While significant non-linear behavior has been observed, in many vibration mounting applications, most design studies are typically based on the concept of linear system theory in terms of force or motion transmissibility. In this paper, an improved analytical strategy is presented for the design optimization of complex, active or passive, non-linear mounting systems. This strategy is built upon the computational Galerkin method of weighted residuals, and incorporates order reduction and numerical continuation In an iterative optimization scheme. The overall dynamic characteristics of the mounting system are considered and vibratory power transmission is minimized via adjustment of mount parameters by using both passive and active means. The method is first applied through a computational example case to the optimization of basic passive and active, non-linear isolation configurations. It is found that either active control or intentionally introduced non-linearity can improve the mount's performance; but a combination of both produces the greatest benefit. Next, a novel experimental, active,:non-linear isolation system is studied. The effects of non-linearity on vibratory power transmission and active control are assessed via experimental measurements and the enhanced Galerkin method. Results show how harmonic excitation can result in multiharmonic vibratory power transmission. The proposed optimization strategy offers designers some flexibility in utilizing both passive and active means in combination with linear and non-linear components for improved vibration mounts. (C) 1996 Academic Press Limited [References: 25]
机译:尽管观察到了明显的非线性行为,但在许多振动安装应用中,大多数设计研究通常基于力或运动传递性的线性系统理论的概念。在本文中,提出了一种改进的分析策略,用于复杂,主动或被动,非线性安装系统的设计优化。该策略建立在加权残差的计算Galerkin方法的基础上,并在迭代优化方案中结合了降阶和数值连续性。考虑了安装系统的整体动态特性,并通过使用无源和有源装置来调整安装参数,从而将振动动力传递最小化。该方法首先通过计算示例案例应用于基本无源和有源,非线性隔离配置的优化。发现主动控制或有意引入的非线性都可以提高安装座的性能。但是两者结合可以带来最大的收益。接下来,研究了一种新型的实验性,主动式,非线性隔离系统。通过实验测量和增强的Galerkin方法评估了非线性对振动动力传递和主动控制的影响。结果表明,谐波激励如何导致多谐波振动功率传递。所提出的优化策略为设计人员提供了一些灵活性,可以将被动和主动方式与线性和非线性组件结合使用,以改善振动安装。 (C)1996 Academic Press Limited [参考号:25]

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