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1.上海理工大学 能源与动力工程学院,上海 200093
2.山东安特检测有限公司,滨州 256500
YANG Jie, E-mail: yangjie@usst.edu.cn
Received:11 September 2025,
Revised:2025-11-11,
Published:15 March 2026
移动端阅览
张旭东, 程严严, 肖金雍, 等.基于现场试验与数值模拟的黏滞阻尼墙应用效能分析[J].机械强度,2026,48(3):133-144.
ZHANG Xudong,CHENG Yanyan,XIAO Jinyong,et al.Analysis of the application effectiveness of viscous damping walls based on field testing and numerical simulation[J].Journal of Mechanical Strength,2026,48(3):133-144.
张旭东, 程严严, 肖金雍, 等.基于现场试验与数值模拟的黏滞阻尼墙应用效能分析[J].机械强度,2026,48(3):133-144. DOI: 10.16579/j.issn.1001.9669.2026.03.015.
ZHANG Xudong,CHENG Yanyan,XIAO Jinyong,et al.Analysis of the application effectiveness of viscous damping walls based on field testing and numerical simulation[J].Journal of Mechanical Strength,2026,48(3):133-144. DOI: 10.16579/j.issn.1001.9669.2026.03.015.
目的
2
为克服传统抗震方法依赖结构件自身耗能、易导致建筑损伤与倒塌的被动性缺陷,以某图书馆的框架-剪力墙结构为工程案例,系统分析了黏滞阻尼墙技术在该实际建筑中的应用方法与效能。
方法
2
首先,该技术通过外部钢板(黏滞体容器)与内部钢板(阻抗板)的相对运动,将层间变形转化为能量耗散,并利用阻尼力与变形之间的滞回效应吸收振动能量,从而有效降低结构的动力响应;其次,通过试验分析了黏滞阻尼墙的滞回性能,并对主体结构进行了多遇地震下的弹性分析,以及在设防地震和罕遇地震下的弹塑性时程分析。
结果
2
结果表明,黏滞阻尼墙具有优良的滞回耗能能力,可为结构提供附加阻尼,显著消耗地震能量,有效提升建筑结构的抗震性能。研究成果对类似工程具有重要的理论价值和实践参考意义。
Objective
2
To address the passive drawbacks of traditional seismic resistance methods
which rely on the energy dissipation of structural components themselves and tend to cause building damage and collapse
the application methods and effectiveness of the viscous damping wall technology in a practical building were systematically analyzed
with the frame-shear wall structure of a certain library taken as an engineering case.
Methods
2
Firstly
through the relative movement between the external steel plate (viscous material container) and the internal steel plate (resistance plate)
the interlayer deformation was converted into energy dissipation by this technology. Meanwhile
the hysteretic effect between damping force and deformation was utilized to absorb vibration energy
thereby effectively reducing the dynamic response of the structure. Secondly
the hysteretic performance of the viscous damping wall was analyzed through experiments
and the elastic analysis of the main structure under frequent earthquakes was conducted. In addition
the elastoplastic time-history analysis of the main structure under fortification earthquakes and rare earthquakes was also carried out.
Results
2
Results demonstrate that the viscous damping wall provides robust energy dissipation capacity and adds significant damping to the structure
substantially consuming seismic input and enhancing overall seismic performance. This research offers valuable theoretical insights and practical guidance for similar engineering applications.
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