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Numerical modelling for monitoring the hysteretic behaviour of CFRP-retrofitted RC exterior beam-column joints

机译:监测CFRP加固RC外部梁柱节点的滞后性能的数值模型

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This paper presents the results of a study on the capability of nonlinear quasi-static finite element modelling in simulating the hysteretic behaviour of CFRP and GFRP-retrofitted RC exterior beam-column joints under cyclic loads. Four specimens including two plain and two CFRP/GFRP-strengthened beam-column joints tested by Mahini and Ronagh (2004) and other researchers are modelled using ANSYS. Concrete in compression is defined by the modified Hognestad model and anisotropic multi-linear model is employed for modelling the stress-strain relations in reinforcing bars while anisotropic plasticity is considered for the FRP composite. Both concrete and FRP are modelled using solid elements whereas space link elements are used for steel bars considering a perfect bond between materials. A step by step load increment procedure to simulate the cyclic loading regime employed in the testing. An automatically reforming stiffness matrix strategy is used in order to simulate the actual seismic performance of the RC concrete after cracking, steel yielding and concrete crushing during the push and pull loading cycles. The results show that the hysteretic simulation for all specimens is satisfactory and therefore suggest that the numerical model can be used as an inexpensive tool to design of FRP-strengthened RC beam-column joints under cyclic loads.
机译:本文介绍了非线性准静态有限元建模在循环荷载作用下模拟CFRP和GFRP加固的RC外部梁柱节点的滞回性能的能力的研究结果。使用ANSYS对四个样本进行了建模,其中包括由Mahini和Ronagh(2004)以及其他研究人员测试的两个平原和两个CFRP / GFRP加固的梁柱节点。通过改进的Hognestad模型定义受压混凝土,并采用各向异性多线性模型对钢筋的应力-应变关系进行建模,同时考虑FRP复合材料的各向异性可塑性。考虑到材料之间的完美结合,混凝土和FRP均使用实体元素进行建模,而空间连接元素用于钢筋。逐步增加负载的过程,以模拟测试中采用的循环加载方式。为了模拟RC混凝土在推拉荷载作用下开裂,屈服和压碎后的实际抗震性能,使用了一种自动重整刚度矩阵策略。结果表明,所有样本的滞后仿真都是令人满意的,因此,该数值模型可以作为一种廉价的工具来设计在循环荷载下FRP加固的RC梁柱节点。

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