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

IF 5.1 2区 工程技术 Q1 CONSTRUCTION & BUILDING TECHNOLOGY Structural Control & Health Monitoring Pub Date : 2023-04-18 DOI:10.1155/2023/7686917
Wenxi Wang, Tianfu Yu, Zhilin Yang, Hongyi Zhang, Xugang Hua
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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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来源期刊
Structural Control & Health Monitoring
Structural Control & Health Monitoring 工程技术-工程:土木
CiteScore
9.50
自引率
13.00%
发文量
234
审稿时长
8 months
期刊介绍: The Journal Structural Control and Health Monitoring encompasses all theoretical and technological aspects of structural control, structural health monitoring theory and smart materials and structures. The journal focuses on aerospace, civil, infrastructure and mechanical engineering applications. Original contributions based on analytical, computational and experimental methods are solicited in three main areas: monitoring, control, and smart materials and structures, covering subjects such as system identification, health monitoring, health diagnostics, multi-functional materials, signal processing, sensor technology, passive, active and semi active control schemes and implementations, shape memory alloys, piezoelectrics and mechatronics. Also of interest are actuator design, dynamic systems, dynamic stability, artificial intelligence tools, data acquisition, wireless communications, measurements, MEMS/NEMS sensors for local damage detection, optical fibre sensors for health monitoring, remote control of monitoring systems, sensor-logger combinations for mobile applications, corrosion sensors, scour indicators and experimental techniques.
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