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Optimization of an inerter-based vibration isolation system and helical spring fatigue life assessment

机译:基于惯性的隔振系统的优化和螺旋弹簧疲劳寿命评估

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This paper presents an analytical analysis and optimization of vibration-induced fatigue in a generalized, linear two-degree-of-freedom inerter-based vibration isolation system. The system consists of a source body and a receiving body, coupled through an isolator. The isolator consists of a spring, a damper, and an inerter. A broadband frequency force excitation of the source body is assumed throughout the investigation. Optimized system, in which the kinetic energy of the receiving body is minimized, is compared with sub-optimal systems by contrasting the fatigue life of a receiving body helical spring with several alternative isolator setup cases. The optimization is based on minimizing specific kinetic energy, but it also increases the number of cycles to fatigue failure of the considered helical spring. A significant portion of this improvement is due to the inclusion of an optimally tuned inerter in the isolator. Various helical spring deflection and stress correction factors from referent literature are discussed. Most convenient spring stress and deflection correction factors are adopted and employed in conjunction with pure shear governed proportional stress in the context of high-cycle fatigue.
机译:本文介绍了基于广义线性二自由度基于惯性的隔振系统中振动引起的疲劳的分析分析和优化。该系统由通过隔离器耦合的源体和接收体组成。隔离器由弹簧,阻尼器和惰杆组成。在整个研究过程中都假定了源体的宽带频率力激励。通过将接收体螺旋弹簧的疲劳寿命与几种可选的隔离器安装情况进行对比,将优化系统(其中接收体的动能最小化)与次优系统进行比较。该优化基于最小化比动能,但同时也增加了所考虑的螺旋弹簧疲劳破坏的循环次数。这种改进的很大一部分是由于在隔离器中包含了优化调谐的惯性器。讨论了来自参考文献的各种螺旋弹簧挠度和应力校正因子。在高周疲劳的情况下,采用最方便的弹簧应力和挠度校正因子并与纯剪切控制的比例应力结合使用。

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