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Cyclic behavior of high-strength steel framed-tube structures with bolted replaceable shear links

机译:螺栓可替换剪切连接的高强度钢框架结构的循环特性

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Although the use of steel framed-tube structures (SFTSs) under intense earthquakes loads helps to prevent fatalities, the plastic hinges at the ends of spandrel beams cannot properly developed due to low clear span-to-depth ratios, resulting in poor ductility and recoverability. To address this problem, high-strength steel framed-tube structures with replaceable shear links (HSS-FTS-RSLs) were proposed, which combine the advantages of replaceable shear links and high-strength steel (HSS). This paper presents an experimental research program including three 2/3-scale single-story single-span sub-structure specimens with three types of spandrel beam-to-link connections: bolted end-plate connection, bolted web connection, and bolted splice-plate connection. The global seismic response and replaceability of the specimens were evaluated. Nonlinear finite element models of the specimens were established and validated with the experimental results. Test results demonstrated that the three specimens developed the expected ductile failure of the shear links while the spandrel beams and columns were damage-free, showing excellent energy dissipation and deformation abilities. The usage of HSS effectively maintained the structural components in essentially linear elastic range. The specimen with bolted end-plate connection exhibited a stable hysteretic response and high resistance. This connection type possesses reliable force transmission, convenient construction, no-slippage property, and the shortest replacement time. The connection rotation as a result of bolt slipping and bolt bearing significantly contributed to the total shear link rotation for the specimens with bolted web connection and bolted splice-plate connection. This led to the increased deformation ability and ductility as well as the pinching of hysteretic loops. Post-earthquake recoverability can be achieved as expected. The acceptable residual story drifts theta(re) that allow for easy replacement of the shear links were 0.41%, 0.31%, and 0.42% corresponding to the specimen with bolted end-plate connection, bolted web connection and bolted splice-plate connection, respectively. The detailed finite element models of the test specimens accurately predicted the experimental behavior.
机译:尽管在强烈地震载荷下使用钢框架结构(SFTS)有助于防止死亡,但由于跨度与深度之比不高,导致跨度梁端部的塑料铰链无法正常开发,导致延展性和可恢复性差。为了解决这个问题,提出了具有可更换剪切杆(HSS-FTS-RSLs)的高强度钢框架结构,其结合了可更换剪切杆和高强度钢(HSS)的优点。本文提出了一项实验研究计划,其中包括三个2/3级单层单跨子结构标本,其中三种类型的跨接梁到连杆的连接方式为:螺栓端板连接,螺栓腹板连接和螺栓接头-板连接。评估了标本的整体地震响应和可替换性。建立了样品的非线性有限元模型,并通过实验结果进行了验证。测试结果表明,这三个样品在剪切梁的梁和柱无损伤的情况下,产生了预期的剪力连接的延性破坏,显示出出色的能量耗散和变形能力。 HSS的使用有效地将结构部件保持在基本上线性的弹性范围内。带螺栓端板连接的样品表现出稳定的磁滞响应和高电阻。这种连接类型具有可靠的力传递,方便的构造,不打滑的特性以及最短的更换时间。螺栓滑动和螺栓支承导致的连接旋转极大地影响了带螺栓腹板连接和螺栓拼接板连接的试样的总剪切杆旋转。这导致增加的变形能力和延展性以及滞回环的收缩。可以达到预期的地震后可恢复性。允许轻松更换剪力杆的可接受的残余层位移theta(re)分别为螺栓端板连接,螺栓腹板连接和螺栓拼接板连接的标本的0.41%,0.31%和0.42% 。试样的详细有限元模型可以准确地预测实验行为。

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