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Modeling, simulation, and validation of a pendulum‐pounding tuned mass damper for vibration control

机译:用于振动控制的摆锤式调谐质量阻尼器的建模,仿真和验证

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This paper proposes a new passive control device, pendulum-pounding tuned mass damper (PPTMD), to mitigate the response of lightly damped structures under various excitations. The proposed PPTMD consists of a tuned pendulum mass and a pounding boundary next to the equilibrium position of the pendulum mass. Moreover, a layer of viscoelastic materials called high energy-dissipation rubber is attached on the pounding boundary to dissipate the vibration energy through impacts. A simplified impact force model was developed for modeling the pounding behavior of the high energy-dissipation rubber pounding layer, and parameters in the simplified model were identified from free pounding experiments. The validation of the numerical method to simulate the dynamic behavior of the PPTMD was provided. The effectiveness of the PPTMD to control a single degree-of-freedom structure was numerically and experimentally studied under free vibration and forced vibration. The effects of the frequency tuning ratio, the coefficient of restitution, the excitation force amplitude, and the mass ratio were studied, respectively. Finally, the control performance of the PPTMD was compared with the classic tuned mass damper under free vibration, forced vibration, and several earthquake records. It is shown that the PPTMD can significantly increase the damping ratio of the controlled structure and effectively reduce the response of the controlled structure around the resonant frequency range. Furthermore, the PPTMD still achieves considerable control performance even if the frequency of the controlled structure varied in a wide range. Due to the different vibration control mechanism, the PPTMD outperforms the classic resonant frequency range in controlling the structural displacement response.
机译:本文提出了一种新型的无源控制装置,摆锤式调谐质量阻尼器(PPTMD),以减轻轻度阻尼结构在各种激励下的响应。拟议的PPTMD由一个已调整的摆质量和一个位于摆质量平衡位置附近的磅定边界组成。此外,在冲击边界上附着了一层称为高耗能橡胶的粘弹性材料,以通过冲击来耗散振动能量。开发了一种简化的冲击力模型,用于对高耗能橡胶防撞层的防撞行为进行建模,并通过自由防撞实验确定了简化模型中的参数。提供了模拟PPTMD动力学行为的数值方法的验证。在自由振动和强迫振动下,通过数值和实验研究了PPTMD控制单一自由度结构的有效性。分别研究了频率调谐比,恢复系数,激振幅度和质量比的影响。最后,在自由振动,强制振动和一些地震记录下,将PPTMD的控制性能与经典调谐质量阻尼器进行了比较。结果表明,PPTMD可以显着提高受控结构的阻尼比,并有效降低谐振频率范围内受控结构的响应。此外,即使受控结构的频率在较大范围内变化,PPTMD仍可实现可观的控制性能。由于不同的振动控制机制,PPTMD在控制结构位移响应方面优于经典的共振频率范围。

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