A Double-Tuned Pendulum Mass Damper Employing a Pounding Damping Mechanism for Vibration Control of High-Rise Structures

Wenxi Wang, Tianfu Yu, Zhilin Yang, Hongyi Zhang, Xugang Hua
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引用次数: 1

Abstract

Recently, enhancing conventional tuned mass dampers (TMDs) with a pounding damping mechanism is demonstrated to be an efficient way for vibration control of flexible structures. In this paper, a double-tuned pendulum mass damper employing a pounding damping mechanism (DTPMD-PD) is proposed. DTPMD-PD dissipates energy through the collision between distributed balls with a smaller mass and viscoelastic (VE) boundary, which can effectively reduce noise during operation compared to conventional impact dampers. Moreover, DTPMD-PD utilizes a double-tuning mechanism, and its control performance is significantly enhanced. The motion equations of a multiple degree of freedom (MDOF) structure equipped with DTPMD-PD are formulated. Based on the H∞ optimization criterion, a numerical optimization is performed to obtain the optimal design parameters of DTPMD-PD. Additionally, the pounding dissipation capacity and the parametric identification of the impact force model are investigated through free pounding experiments, and the control performance and robustness of DTPMD-PD are experimentally studied in the laboratory. The results show that the proposed numerical modeling method has considerable accuracy through experimental verifications. The restitution coefficient of the pounding layer has a significant influence on the performance of proposed DTPMD-PD. Optimized DTPMD-PD has better effectiveness than conventional TMDs under harmonic and seismic loads.
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采用冲击阻尼机构的双调谐摆质阻尼器用于高层结构的振动控制
近年来,在传统调谐质量阻尼器(TMDs)上加入冲击阻尼机制被证明是柔性结构振动控制的有效途径。本文提出了一种采用冲击阻尼机构的双调谐摆质阻尼器(DTPMD-PD)。dpmd - pd通过分布球之间的碰撞来耗散能量,具有较小的质量和粘弹性(VE)边界,与传统的冲击阻尼器相比,可以有效地降低运行过程中的噪声。此外,DTPMD-PD采用了双调谐机制,其控制性能得到了显著提高。建立了装有dpmd - pd的多自由度结构的运动方程。基于H∞优化准则,进行了数值优化,得到了dpmd - pd的最优设计参数。此外,通过自由冲击实验研究了冲击耗散能力和冲击力模型的参数辨识,并在实验室对DTPMD-PD的控制性能和鲁棒性进行了实验研究。实验结果表明,所提出的数值模拟方法具有较高的精度。冲击层的恢复系数对所提出的DTPMD-PD的性能有显著影响。优化后的DTPMD-PD在谐波和地震荷载作用下的有效性优于传统的tmd。
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