采用多管屈服阻尼器改善字形支撑框架的抗震性能

B. Behzadfar, A. Maleki, M. L. Yaghin
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引用次数: 1

摘要

研究人员对提高同心支撑框架的延性和耗能进行了大量的试验和数值研究。增加延展性和能量耗散的最广泛使用的策略之一是使用能量吸收系统。为此,采用有限元方法对装有多管阻尼器(CBF-MPD)的v形支撑框架系统的循环性能进行了研究。本研究的目的是利用mpd来评估和改善CBF的行为。利用ABAQUS软件,采用非线性有限元法建立了三角支撑框架的三维模型。有限元模型包括形支撑框架和装有多管阻尼器的形支撑框架。选择v形支撑框架模型作为基础模型,对多管阻尼器的效果进行了比较和评价。有限元模型在循环荷载和非线性静力方法下进行了分析。根据试验结果对有限元方法的结果进行了验证。在参数化研究中,研究了管径参数对管道阻尼器厚度(D/t)比的影响。结果表明,管道阻尼器的抗剪能力对支撑性能的确定有重要影响。结果表明,在最大力作用下,CBF- mpd的相应位移比CBF平均增加了2.72等量。同时,合理选择管道阻尼器的尺寸,提高了三角支撑框架的延性和吸能能力。
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Improved Seismic Performance of Chevron Brace Frames Using Multi-Pipe Yield Dampers
Spacious experimental and numerical investigation has been conducted by researchers to increase the ductility and energy dissipation of concentrically braced frames. One of the most widely used strategies for increasing ductility and energy dissiption, is the use of energy-absorbing systems. In this regard, the cyclic behavior of a chevron bracing frame system equipped with multi-pipe dampers (CBF-MPD) was investigated through finite element method. The purpose of this study was to evaluate and improve the behavior of the CBF using MPDs. Three-dimensional models of the chevron brace frame were developed via nonlinear finite element method using ABAQUS software. Finite element models included the chevron brace frame and the chevron brace frame equipped with multi-pipe dampers. The chevron brace frame model was selected as the base model for comparing and evaluating the effects of multi-tube dampers. Finite element models were then analyzed under cyclic loading and nonlinear static methods. Validation of the results of the finite element method was performed against the test results. In parametric studies, the influence of the diameter parameter to the thickness (D/t) ratio of the pipe dampers was investigated. The results indicated that the shear capacity of the pipe damper has a significant influence on determining the bracing behavior. Also, the results show that the corresponding displacement with the maximum force in the CBF-MPD compared to the CBF, increased by an average of 2.72 equal. Also, the proper choice for the dimensions of the pipe dampers increased the ductility and energy absorption of the chevron brace frame.
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来源期刊
Journal of Rehabilitation in Civil Engineering
Journal of Rehabilitation in Civil Engineering Engineering-Building and Construction
CiteScore
1.60
自引率
0.00%
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0
审稿时长
12 weeks
期刊最新文献
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