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Seismic performance of ribbed bracing system in passive control of structures

机译:罗纹支撑系统中的抗被动控制中的抗震性能

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In this article, a novel passive control system, ribbed bracing system (RBS), has been proposed to deal with the buckling problem. RBS is a bracing system with a simple mechanism that can be installed in braces as a supplemental part. The behavior of RBS is similar to that of conventional braces under tensile loading. However, under compressive force, it endures an insignificant force and prevents the braces from buckling through length reduction. In addition, seismic damage is concentrated in the bracing system of the structures equipped with RBS, decreasing the dissipated hysteretic energy in other structural members. There are two different mechanisms for RBS: 1) completely-closed RBS (CC-RBS) and 2) self-centering RBS (SC-RBS). The concept and mechanics of RBS have been verified by the results obtained from cyclic testing and numerical analysis of RBS specimens. In this research, after describing the mechanical configuration of RBS, nonlinear time history analysis has been conducted on 3-story and 6-story concentrically braced frames subjected to different seismic intensity levels, design basis earthquakes (DBE), and maximum considered earthquakes (MCE). The analyses have been performed on different types of bracing systems as follows: SC-RBS, CC-RBS, and Buckling Restrained Braces (BRB). The results show that SC-RBS frames have negligible residual story drifts, and maximum displacement in CC-RBS is slightly lower than that of BRB. Additionally, distribution of input energy into the structure was considered and showed that RBS frames demonstrate a high hysteretic energy dissipation, which results in lower demands in other structural elements.
机译:本文提出了一种新型的被动控制系统——肋支撑系统(RBS),用于处理屈曲问题。RBS是一种带有简单机械装置的支撑系统,可以作为补充部件安装在支撑中。RBS的性能与传统支撑在拉伸荷载下的性能相似。然而,在压缩力下,它承受的力很小,可以防止支架因长度减少而屈曲。此外,地震损伤集中在配备RBS的结构的支撑系统中,从而降低了其他结构构件的滞回耗能。RBS有两种不同的机制:1)完全封闭RBS(CC-RBS)和2)自定心RBS(SC-RBS)。RBS的概念和力学已通过RBS试样的循环试验和数值分析结果得到验证。在本研究中,在描述RBS的机械结构后,对3层和6层同心支撑框架在不同地震烈度、设计基准地震(DBE)和最大考虑地震(MCE)下进行了非线性时程分析。对以下不同类型的支撑系统进行了分析:SC-RBS、CC-RBS和屈曲约束支撑(BRB)。结果表明,SC-RBS框架的残余层间位移可以忽略不计,CC-RBS框架的最大位移略低于BRB框架。此外,还考虑了输入能量在结构中的分布,结果表明RBS框架具有较高的滞回耗能,从而降低了对其他结构构件的要求。

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