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Behavior of heated damaged reinforced concrete beam-column joints strengthened with FRP

机译:加热耐腐蚀混凝土梁柱接头的行为加强FRP

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摘要

This paper presents the efficiency of the external fiber reinforced polymer (FRP) composites in rescue the structural performance and controlling the mode of failure of the heated damaged reinforced concrete (RC) beam-column joint by nonlinear finite element analysis (NLFEA). Firstly, the RC beam-column model was validated against the published experimental results and then was expanded to consider the effect of column axial load level (0%, 25 %, 50 %, and 75 %) and elevated temperature (23?°C, 200?°C, 400?°C, and 600?°C) on the models with and without FRP composites. The structural performance was evaluated in terms of failure mode, stress distribution, pulling and pushing ultimate load capacity and corresponding displacement, horizontal load-displacement hysteretic loops, horizontal load-displacement envelopes, displacement ductility, energy dissipation, and stiffness degradation. The NLFEA results showed that the FRP strengthening technique of heated damaged RC beam-column joint with FRP composite enhanced the cyclic performance (higher load capacity, larger horizontal displacement, higher displacement ductility, higher energy dissipation, and slower secant stiffness degradation) and the efficiency of FRP composite increased with the heated damage level. Also, the FRP composite strengthening technique gave the ability to transform the joint-column regions mode of failure from brittle into a ductile mode of failure through the formation of plastic hinge in the beam only at a higher level column axial loads of more than 25 %. While the application level of column axial loads less than 25 % only enhanced just the ultimate axial load capacity and corresponding deflection.
机译:本文介绍了外部纤维增强聚合物(FRP)复合材料的效率,通过非线性有限元分析(NLFEA)拯救了结构性能并控制了加热损坏的钢筋混凝土(RC)束柱接头的失效模式。首先,对发表的实验结果验证了RC光束柱模型,然后扩展以考虑柱轴向载荷水平(0%,25%,50%和75%)和升高的温度(23Ω·℃在带有和无FRP复合材料的型号上,200?°C,400°C和600°C)。在故障模式,应力分布,拉动和推动最终负载容量和相应的位移,水平载荷 - 位移滞回环,水平负载 - 位移包络,位移延展性,能量耗散和刚度降解方面评估了结构性能。 NLFEA结果表明,具有FRP复合材料的加热损坏RC光束柱接头FRP强化技术增强了循环性能(较高负载能力,较大的水平位移,较高的位移延展性,较高的耗能,较高的致密刚度降解)和效率FRP复合材料随着加热损伤水平的增加。此外,FRP复合强化技术通过在梁中形成的塑料铰链仅在高于25%的较高水平柱载荷中,使FRP复合强化技术使得将接合柱区域的故障模式从脆性变为延展性故障模式。 。虽然柱轴载量小于25%的应用水平仅增强了最终的轴向负载容量和相应的偏转。

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