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Finite element analysis for the seismic performance of steel frame-tube structures with replaceable shear links

机译:可更换剪切链路钢框架结构抗震性能的有限元分析

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In steel frame-tube structures (SFTSs) the application of flexural beam is not suitable for the beam with span-to-depth ratio lower than five because the plastic hinges at beam-ends can not be developed properly. This can lead to lower ductility and energy dissipation capacity of the SFTS. To address this problem, a replaceable shear link, acting as a ductile fuse at the mid length of deep beams, is proposed. SFTS with replaceable shear links (SFTS-RSLs) dissipate seismic energy through shear deformation of the link. In order to evaluate this proposal, buildings were designed to compare the seismic performance of SFTS-RSLs and SFTSs. Several sub-structures were selected from the design buildings and finite element models (FEMs) were established to study their hysteretic behavior. Static pushover and dynamic analyses were undertaken in comparing seismic performance of the FEMs for each building. The results indicated that the SFTS-RSL and SFTS had similar initial lateral stiffness. Compared with SFTS, SFTS-RSL had lower yield strength and maximum strength, but higher ductility and energy dissipation capacity. During earthquakes, SFTS-RSL had lower interstory drift, maximum base shear force and story shear force compared with the SFTS. Placing a shear link at the beam mid-span did not increase shear lag effects for the structure. The SFTS-RSL concentrates plasticity on the shear link. Other structural components remain elastic during seismic loading. It is expected that the SFTS-RSL will be a reliable dual resistant system. It offers the benefit of being able to repair the structure by replacing damaged shear links after earthquakes.
机译:在钢制框架结构(SFTS)中,弯曲梁的应用不适合具有低于五个跨度的光束,因为光束端的塑料铰链不能正常开发。这可能导致SFT的延展性和能量耗散能力降低。为了解决这个问题,提出了一种可更换的剪切连杆,作为在深梁的中间长度处的延展性熔丝。使用可更换剪切链路(SFTS-RSL)通过链路的剪切变形来消散地震能量的SFT。为了评估这一提议,建筑物旨在比较SFTS-RSL和SFTS的地震性能。从设计建筑物中选择了几个子结构,并建立了有限元模型(有限元)以研究其滞后行为。在比较每个建筑物的有限元的地震性能时进行了静电推进和动态分析。结果表明,SFTS-RSL和SFT具有相似的初始横向刚度。与SFT相比,SFTS-RSL具有较低的屈服强度和最大强度,但延展性和能量耗散能力较高。在地震期间,与SFT相比,SFTS-RSL具有较低的壁漂移,最大的基础剪力力和故事剪切力。将剪切链路放置在光束中间跨度下没有增加结构的剪切滞后效果。 SFTS-RSL集中在剪切链路上的可塑性。其他结构部件在地震载荷期间保持弹性。预计SFTS-RSL将是可靠的双抗性系统。它提供了能够通过在地震后更换损坏的剪切环节来修复结构的益处。

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