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OPTIMIZATION OF VIBRATION ISOLATION MOUNTS WITH INTERNAL ROTATION IN RESPONSE TO SHOCK TYPE INPUTS

机译:响应于冲击型输入的具有内部旋转的振动隔离座的优化

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The design of isolation mounts is of critical importance in the protection of structures and sensitive equipment from damage or failure. Simultaneous protection from both shock and vibration is particularly challenging because of the broadband nature of the input signal and because of the deleterious effect of damping on high-frequency isolation. Prior work by the authors has shown that chains of translating and rotating mass/spring elements can act as a "mechanical filter " for input disturbances. If designed correctly, the isolator is able to trap some of the input energy into rotational vibration, preventing it from damaging the structure. However, infinite-length chains, wave reflections can result in secondary pulses that hit the structure and can diminish the effectiveness of the isolator. In this paper, the design of dynamic isolation mounts is improved using an optimization technique. Numerical simulations are performed using a parametric model of the new mount design. The simulated annealing optimization algorithm is used to determine the optimal system parameters for a given chain length. It is shown that the optimized system is able to achieve significant performance improvements. It is also shown that dynamic mounts that allow rotational movement of internal elements outperform optimized purely translational-motion systems.
机译:隔离支架的设计对于保护结构和敏感设备免受损坏或故障至关重要。由于输入信号的宽带特性以及由于阻尼对高频隔离的有害影响,因此同时保护免受冲击和振动的挑战尤其具有挑战性。作者的先前工作表明,平移和旋转的质量/弹簧元件链可以充当输入干扰的“机械过滤器”。如果设计正确,则隔离器能够将一些输入能量捕获到旋转振动中,从而防止其损坏结构。但是,在无限长的链中,波反射会导致次级脉冲撞击结构并降低隔离器的效率。在本文中,使用优化技术改进了动态隔离安装座的设计。使用新安装设计的参数模型执行数值模拟。模拟退火优化算法用于确定给定链长的最佳系统参数。结果表明,优化后的系统能够显着提高性能。还表明,允许内部元件旋转运动的动态安装优于优化的纯平移运动系统。

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