非对称摩擦连接 RCS 接头和楼板地震行为的实验研究

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引用次数: 0

摘要

本文介绍了一种新型钢筋混凝土柱-钢梁(RCS)连接,它采用非对称摩擦连接(AFC)来改善能量消耗和力矩传递,从而减少连接核心部位的应力集中。设计了两个带有 AFC 和楼板的 RCS 接头试件,并在准静态加载下进行了测试,以分析螺栓预紧力对抗震性能的影响。实验结果表明,带 AFC 和楼板的 RCS 接头在承载能力、能量消耗和刚度退化方面都表现出良好的抗震性能。增加螺栓预紧力可以提高连接处的承载能力、刚度和能量耗散能力。故障发生在钢梁拼接连接处,而当连接处的承载力降至峰值荷载的 80% 以下时,钢筋混凝土柱仅出现轻微的微裂缝。支柱顶部的位移主要受钢梁和支柱变形的影响,接头核心变形的影响微乎其微。AFC 的使用有效减少了连接核心区域的变形,满足了抗震设计规范中 "强柱弱梁 "的要求。
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Experimental study on seismic behavior of RCS joints with asymmetric friction connections and slabs

This paper introduces a new reinforced concrete column-steel beam (RCS) joint that employs asymmetric frictional connections (AFC) to improve energy dissipation and moment transfer, reducing stress concentrations within the joint’s core. Two RCS joint specimens with AFC and floor slabs were designed and tested under quasi-static loading to analyze the impact of bolt preload on seismic performance. The experimental results demonstrate that RCS joints with AFC and slabs exhibit favorable seismic behavior in terms of bearing capacity, energy dissipation, and stiffness degradation. Increasing bolt preload enhances the bearing capacity, stiffness, and energy dissipation capacity of the joints. The failure occurred at the steel beam splice connections, while only minor micro-cracks appeared in the reinforced concrete column when the joint's bearing capacity dropped below 80% of the peak load. Displacement at the column top was primarily influenced by steel beam and column deformation, with minimal contribution from joint core deformation. The use of AFC effectively reduced deformation in the joint core area, meeting seismic design code requirements for “strong columns-weak beams.”

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