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Dynamics and control for vibration isolation design.

机译:隔振设计的动力学和控制。

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摘要

The single-degree-of-freedom (SDOF) system is the most widely used model for vibration isolation systems. The SDOF system is a simple but worthy model because it quantifies many results of an isolation system. For instance, a SDOF model predicts that the high frequency transmissibility increases when the isolator has passive damping although this does not occur for an isolator implementing active damping. A severe limitation of this system is that it cannot be used when the base and/or equipment are flexible.; System flexibility has been considered in previous literature but the flexibility has always been approximated which leads to truncation errors. The analysis used in this work is more sophisticated in that it can model the system flexibility without the use of any approximations. Therefore, the true effects of system flexibility can be analyzed analytically.; Current literature has not fully explored the choice of mount frequency or actuator placement for flexible systems either. It is commonly suggested that isolators should be designed with a low-frequency mount. That is, the isolator frequency should be much lower than any of the system frequencies. It is shown that these isolators tend to perform best in an overall sense; however, mount frequencies designed between system modes tend to have a coupling effect. That is, the lower frequencies have such a strong interaction between each other that when isolator damping is present, multiple system modes are attenuated. Also, when the base and equipment are flexible, isolator placement becomes a critical issue. For low-frequency mount designs, the first natural frequency can shift as much as 15.6% for various isolator placements. For a mid-frequency mount design, the shift of the first three modes can be as high as 34.9%, 26.6% and 11.3%, respectively, for varying isolator placements.
机译:单自由度(SDOF)系统是振动隔离系统使用最广泛的模型。 SDOF系统是一个简单但有价值的模型,因为它可以量化隔离系统的许多结果。例如,SDOF模型预测,当隔离器具有被动阻尼时,高频透射率会增加,尽管对于实现主动阻尼的隔离器而言,这不会发生。该系统的严重局限性在于,如果底座和/或设备是柔性的,则不能使用该系统。在以前的文献中已经考虑了系统的灵活性,但是一直以来都近似采用了灵活性,这会导致截断错误。这项工作中使用的分析更加复杂,因为它可以在不使用任何近似的情况下对系统的灵活性进行建模。因此,可以对系统灵活性的真正效果进行分析。当前的文献还没有完全探索用于柔性系统的安装频率或致动器位置的选择。通常建议隔离器设计为低频安装座。也就是说,隔离器频率应远低于任何系统频率。结果表明,这些隔离器在总体意义上倾向于表现最佳。但是,在系统模式之间设计的安装频率往往会产生耦合效应。也就是说,较低的频率彼此之间具有很强的相互作用,以至于当存在隔离器阻尼时,多个系统模式会被衰减。同样,当底座和设备灵活时,隔离器的放置也成为关键问题。对于低频安装设计,对于各种隔离器放置,其第一固有频率可偏移多达15.6%。对于中频安装设计,对于不同的隔离器位置,前三种模式的偏移分别可以分别高达34.9%,26.6%和11.3%。

著录项

  • 作者

    Sciulli, Dino.;

  • 作者单位

    Virginia Polytechnic Institute and State University.;

  • 授予单位 Virginia Polytechnic Institute and State University.;
  • 学科 Engineering Mechanical.; Engineering Aerospace.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 158 p.
  • 总页数 158
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;航空、航天技术的研究与探索;
  • 关键词

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