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Design Principle of a Nonlinear Robust Dynamic Vibration Absorber

机译:非线性鲁棒动态减振器的设计原理

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This study aims to develop a design principle of a nonlinear dynamic vibration absorber focusing on its robustness against the alteration of the natural frequency of the primary system. To this end, a 2-DOF coupled system consisting of the primary and absorber systems is analytically solved to evaluate the maximally possible level of the displacement response of the primary system by means of averaging method. In this approach, the equation of motion of the vibration absorber is first solved in the steady-state by the averaging method for a given amplitude of the primary system assuming that the whole responses of the coupled system have the same frequency as the excitation force. Then, the equivalent dynamic stiffness of the dynamic absorber is derived which represents how the absorber acts on the primary system in reaction of the displacement of the primary system. Because the maximally possible displacement amplitude of the primary system is enveloped by the reciprocal of the imaginary part of the equivalent dynamic stiffness, the benefit of introducing a softening effect into the design of the dynamic absorber is theoretically suggested, and validated through numerical simulations.
机译:这项研究旨在开发非线性动态吸振器的设计原理,重点是其对初级系统固有频率变化的鲁棒性。为此,对包含一次系统和吸收器系统的2-DOF耦合系统进行了解析求解,以求平均值的方式评估一次系统的位移响应的最大可能水平。在这种方法中,假设耦合系统的整个响应具有与激振力相同的频率,则对于给定的主系统振幅,首先通过平均方法在稳态下求解减振器的运动方程。然后,得出动态吸收器的等效动态刚度,该动态刚度表示吸收器在主系统位移的反应中如何作用在主系统上。由于一次系统的最大可能位移振幅被等效动态刚度的虚部的倒数所包围,因此从理论上提出了将软化效果引入动态吸收器设计的好处,并通过数值模拟对其进行了验证。

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