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Experimental Study on Seismic Behavior of New Steel Box Bridge Piers with Embedded Energy Dissipation Shells

机译:嵌入式耗能壳新钢箱桥墩抗震行为的实验研究

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An investigation was conducted to evaluate the seismic behavior of a new type of steel box-section bridge piers with embedded energy dissipation shell plates. In this study, two sets of the new steel box-section bridge piers were designed and pseudo-static tests were carried out on ten steel box bridge piers under constant axial force, with a horizontal cyclic load on top of the piers. The change regularities of the failure mode, the patterns of local buckling, the load-displacement hysteresis curve and its curve skeletons, and the load-strain hysteresis curves of the specimens were analyzed. The rules of horizontal stiffener spacing on embedded shell plates, the axial compression ratio, the embedded shell strength, and the layout of longitudinal ribs in the box-section wallboards were obtained to evaluate their influence on the seismic behavior of the new-type steel piers. The test results indicated that, after installing the embedded shells, the deformation ability of steel box-section bridge piers was enhanced and their ductility was improved. The effects of axial compression ratio and the space of transverse stiffeners in embedded shells on the seismic behavior of the new steel piers were significant. When the space of the horizontal stiffeners on the embedded shells and the axial compression ratio become smaller, the bearing capacity and ultimate displacement capability of the specimens would be greater, the descent segment of the curve skeleton would be more gradual, and the deformability and ductility of the new-type steel piers would be better. The effects of setting longitudinal stiffening ribs and enhanced embedded shell strength on the bearing capacity and ductility of the steel box bridge piers were relatively small. Based on the experimental results, calculation equations were established for stable bearing capacity and maximum deformation of the new-type steel piers, under the constant axial force and horizontal cyclic loading, in order to promote their seismic design.
机译:进行了调查,以评估具有嵌入式能量耗散壳板的新型钢箱段桥墩的地震行为。在这项研究中,设计了两组新的钢盒桥码头,并在恒定的轴向力下进行了在十个钢箱桥墩上进行了伪静态试验,在码头顶部有水平循环负载。分析了失效模式的变化规律,局部屈曲的图案,负载 - 位移滞后曲线及其曲线骨架,以及样本的载荷 - 应变滞后曲线。嵌入式壳板上的水平加强筋间距规则,轴向压缩比,嵌入式壳体强度和盒段墙板中的纵向肋的布局,以评估它们对新型钢墩的地震行为的影响。测试结果表明,在安装嵌入式壳体之后,提高了钢箱段桥墩的变形能力,改善了它们的延性。轴向压缩比和横向加强件在嵌入式壳体上的横向加强件对新钢墩的地震行为的影响显着。当嵌入式壳体上的水平加强件和轴向压缩比的空间变小时,样品的承载力和最终位移能力将更大,曲线骨架的下降段更加渐变,并且可变形性和延展性新型钢铁码头会更好。设定纵向加强肋和增强的嵌入式壳体强度对钢箱桥墩轴承能力和延展性的影响相对较小。基于实验结果,在恒定轴向力和水平循环加载下,建立了稳定承载力和新型钢材墩的最大变形的计算方程,以促进其地震设计。

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