重复荷载有限循环作用下钢筋混凝土外梁柱节点的数值分析

Hadeel Ali Handel Sabah, Ibrahim S. I. Harba
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引用次数: 0

摘要

梁柱节点是将剪力、弯矩、扭转等力从梁传递到柱的结构,在其连接功能不足的结构中起着重要作用。因此,本研究旨在探讨有限循环重复荷载对外梁柱节点核心强度的影响。因此,采用有限元方法对34个试件进行了数值分析。采用混凝土损伤塑性模型定义混凝土材料,采用非线性各向同性/运动(组合)硬化模型定义钢材料。这些模型包含在ABAQUS软件包2020版中。本研究涉及到梁柱节点的关键参数研究,总结为除了使用两种类型的抗剪配筋外,改变节点核心的抗剪配筋比例。本文还研究了梁的受弯配筋效应和梁的抗剪配筋效应对梁柱节点强度的影响。为了校准软件以模拟真实的结果,使用了三个样本,这些样本已经在以前的研究中进行了测试。结果表明,该数值模型能较准确地预测有限循环重复加载下的试验响应。将模拟得到的极限荷载与试验结果进行了一次比较,两者的差异小于10%,极限位移的差异小于11%。结果表明,将节点抗剪配筋比例增加一倍对节点的极限荷载没有显著影响。否则,与ASCE352-02R设计的试样相比,将其减少一半会导致极限载荷的降低。本研究研究了加x形配筋增加抗剪配筋的有效性。梁的受弯配筋使梁的极限承载能力提高了48%,其中受弯配筋比例提高到1.8%,梁的承载能力得到了提高。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Analysis of Reinforced Concrete Exterior Beam-Column Joints Under Limited Cycles of Repeated Loading
The beam-column joints play an important role in the structures where the functions of connection shortage by transport the forces like shear, moment, and torsion from the beam to the column. So, this study represents an attempt to investigate the performance and the effect of limited cycles of repeated load on the strength of the exterior beam-column joint core. Therefore, 34 specimens have been investigated by using a numerical analysis that used the finite element method. To simulate these specimens, the concrete damage plasticity model was used to define the concrete materials and the nonlinear isotropic/kinematic (combined) hardening model for steel material definition. These models are involved in the ABAQUS software package, version 2020. This study involves key parametric studies on beam-column joints, which are summarized as changing the ratio of shear reinforcement of the joint core in addition to using two types of shear reinforcement. This study also includes the effect of flexural reinforcement of the beam as well as the beam’s shear reinforcement effect on the strength of the beam-column joint. To calibrate the software to simulate a realistic result, three specimens have been used, which have been tested in previous studies. It has been found that this numerical model accurately predicts the experimental response under limited cycles of repeated loading. The ultimate load from modelling was compared with the experiment once, having a difference of less than 10% and the ultimate displacement having a difference of less than 11%. It has been found that increasing the ratio of the joint’s shear reinforcement to double has no significant effect on the ultimate load. Otherwise, decreasing it to half leads to a decrease in the ultimate load compared with a specimen that is designed according to ASCE352-02R. This study has studied the effectiveness of increasing the shear reinforcement by adding an x-shape reinforcement. Also, the flexural reinforcement of the beam has found it has increased the ultimate load capacity by 48% Where the ratio of flexural reinforcement increased to 1.8%, the load bearing capacity was enhanced.
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