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Seismic testing and performance of buckling-restrained bracing systems

机译:屈曲约束支撑系统的抗震测试和性能

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摘要

This paper describes a subassemblage seismic test program performed on six buckling-restrained braces (BRBs). Two different brace core segment lengths and two different buckling-restraining mechanisms were examined. The applied loading histories included a qualifying quasi-static cyclic test with stepwise incremental displacement amplitudes and a dynamically applied seismic loading. A test was also carried out on a conventional bracing member for comparison purposes. The concrete-filled tube specimens exhibited satisfactory performance under the quasi-static loading protocol, regardless of the length of the core segment. Strain hardening and frictional responses resulted in brace axial forces significantly exceeding the core yield capacity. The steel BRB system exhibited good performance under the quasi-static and dynamic loading sequences, provided that the clearance between the brace core and the buckling-restrained mechanism was kept to a minimum. The dynamic loading protocol was less severe for low-cycle fatigue than the quasi-static loading, but higher strain rates resulted in amplified yield resistance. The conventional bracing member withstood the entire quasi-static loading history but exhibited limited energy-dissipation capacity compared with the concrete-filled BRBs.
机译:本文介绍了对六个屈曲约束支撑(BRB)进行的子组件地震测试程序。研究了两种不同的支撑芯段长度和两种不同的屈曲约束机制。所施加的载荷历史包括合格的准静态循环试验,该试验具有逐步增大的位移幅度和动态施加的地震载荷。为了进行比较,还对传统的支撑构件进行了测试。不论芯段的长度如何,在准静态载荷方案下,钢管混凝土试件均表现出令人满意的性能。应变硬化和摩擦响应导致支撑轴向力大大超过岩心屈服能力。钢制BRB系统在准静态和动态荷载作用下表现出良好的性能,只要支撑铁心与屈曲约束机构之间的间隙保持最小即可。对于低周疲劳,动态加载方案不如准静态加载严重,但是较高的应变速率导致放大的屈服强度。常规的支撑构件经受了整个准静态的载荷历史,但是与混凝土填充的BRB相比,其耗能能力有限。

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