横向荷载作用下钢筋混凝土内梁柱连接的有限元分析

Gemechu Abdissa
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引用次数: 1

摘要

梁柱连接处是钢筋混凝土框架结构中最关键的区域。连接的强度直接影响钢筋混凝土框架结构在横向和轴向荷载作用下的整体性能。研究影响节点整体性能和结构响应的关键参数具有重要意义。计算机技术的最新发展使得使用有限元方法对钢筋混凝土结构进行三维建模和分析成为可能。采用ABAQUS软件对钢筋混凝土内梁柱节点在侧向荷载作用下的剪切破坏模式进行了非线性有限元分析,从节点抗剪能力、变形和开裂模式等方面研究了节点的剪切破坏模式。采用三维应力六面体单元类型(C3D8R)建立三维实体模型,模拟混凝土的受力特性。采用带桁架形状单元的线形模型(T3D2)模拟钢筋的受力行为。采用嵌入式建模技术对混凝土和钢筋进行耦合。为了定义混凝土材料的非线性行为,将混凝土损伤塑性(CDP)作为整个几何结构的分布塑性应用到数值模型中。研究柱轴向荷载、梁纵向配筋率、节点板几何形状和混凝土抗压强度对节点剪切破坏影响最大的参数。通过钢筋混凝土梁柱内部连接在侧向荷载作用下的试验验证了有限元模型的正确性。该模型在荷载-位移关系、裂缝形态和节理剪切破坏模式等方面与试验结果对比良好。有限元分析表明,混凝土抗压强度是预测节理剪切破坏的主要影响参数。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Finite Element Analysis of Reinforced Concrete Interior Beam Column Connection Subjected to Lateral Loading
The beam column connection is the most critical zone in a reinforced concrete frame. The strength of connection affects the overall behavior and performance of RC framed structures subjected to lateral load and axial loads. The study of critical parameters that affects the overall joint performances and response of the structure is important. Recent developments in computer technology have made possible the use of Finite element method for 3D modeling and analysis of reinforced concrete structures. Nonlinear finite element analysis of reinforced concrete interior beam column connection subjected to lateral loading was performed in order to investigate joint shear failure mode in terms of joint shear capacity, deformations and cracking pattern using ABAQUS software. A 3D solid shape model using 3D stress hexahedral element type (C3D8R) was implemented to simulate concrete behavior. Wire shape model with truss shape elements (T3D2) was used to simulate reinforcement’s behavior. The concrete and reinforcement bars were coupled using the embedded modeling technique. In order to define nonlinear behavior of concrete material, the concrete damage plasticity (CDP) was applied to the numerical model as a distributed plasticity over the whole geometry. The study was to investigate the most influential parameters affecting joint shear failure due to column axial load, beam longitudinal reinforcement ratio, joint panel geometry and concrete compressive strength. The Finite Element Model (FEM) was verified against experimental test of interior RC beam column connection subjected to lateral loading. The model showed good comparison with test results in terms of load-displacement relation, cracking pattern and joint shear failure modes. The FEA clarified that the main influential parameter for predicting joint shear failure was concrete compressive strength.
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