共 55 条
Experimental verification of seismic vibration control of high-rise buildings with friction-type multiple tuned mass dampers
被引:2
作者:
Lin, Ging-Long
[1
]
Lin, Chi-Chang
[2
,3
]
Yang, Tsung-Han
[2
]
Lung, Hao-Yu
[2
]
机构:
[1] Natl Kaohsiung Univ Sci & Technol, Kaohsiung, Taiwan
[2] Natl Chung Hsing Univ, Taichung, Taiwan
[3] Chaoyang Univ Technol, Taichung, Taiwan
关键词:
Multiple tuned mass dampers;
Shaking table test;
Optimal design;
Friction;
Fail-safe device;
DYNAMIC CHARACTERISTICS;
OPTIMUM DESIGN;
PERFORMANCE;
OPTIMIZATION;
MODEL;
D O I:
10.1016/j.engstruct.2023.117401
中图分类号:
TU [建筑科学];
学科分类号:
0813 ;
摘要:
In recent decades, tuned mass damper (TMD) devices have been implemented in numerous high-rise buildings in the world. The vibration of tall buildings caused by natural or man-made dynamic loading poses a challenge. In this study, to ensure structural safety and resident comfort, a friction-type multiple TMD (FT-MTMD) system was investigated and its ability to reduce the seismic response of high-rise buildings was evaluated. The proposed FTMTMD system comprises multiple TMD units in a parallel arrangement and has a greater frequency bandwidth than a conventional TMD system. To address practical issues, a prototype FT-MTMD system was designed and fabricated to control a scale-down test model which has similar fundamental modal properties to a real 36-story building. Because of the nonlinearity of friction, the parameters of the FT-MTMD system were determined using a proposed optimal design method. First, a component test was conducted to ensure that the parameters of the FTMTMD agreed with the designed values. Then, the FT-MTMD was installed on the long-period test model and its control performance was experimentally evaluated. Shaking table test results indicated that the FT-MTMD system favorably reduced the seismic response in the test model, indicating that the proposed optimal design method is reliable. A theoretical structure-MTMD model was also developed to simulate the system response with unsynchronized stick-slip motion of the FT-MTMD system. The predicted system response agreed well with the measured response. In addition, to avoid damage to the FT-MTMD system during a severe earthquake, a failsafe device was employed to lock the TMD when its stroke reached the maximum allowable value.
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页数:12
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