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Numerical simulation of the influence of bond strength degradation on the behavior of reinforced concrete beam-column joints externally strengthened with FRP sheets

机译:粘接强度降解对FRP薄片外部加强钢筋混凝土梁柱关节行为影响的数值模拟

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Limited information is known about the effects of bond strength degradation during installation on the bond's quality and performance between fiber-reinforced polymer (FRP) reinforcement and substrate material. This research study's primary focus is to investigate the efficiency of the external FRP composites in rescuing the structural performance and controlling the mode of failure of the reinforced concrete (RC) beam-column joint with different bond strength degradation percentages 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 the degradation percentages in bond strength between concrete and FRP composite (0 % (Fully bond), 10 %, 20 %, 30 %, 40 %, 50 %, 60 %, 70 %, 80 %, 90 %, and 100 % (control or un-strengthened joint). 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, stiffness degradation, and equivalent hysteretic damping factor. The NLFEA results showed that the FRP strengthening technique with bond strength degradation percentages less than 30 % enhanced the cyclic performance (higher load capacity, larger horizontal displacement, higher displacement ductility, higher energy dissipation, and slower secant stiffness degradation). Also, the utilized FRP method with bond strength degradation percentage less than 30 % performed well in eliminating any surface debonding or buckling in the FRP composite because of the proper lateral support provided for the strengthening sheets. Finally, the bond strength degradation percentage less than 30 % could significantly enhance the deficient joints' seismic performance under strong beam-weak column conditions by changing its behavior to a more ductile one, including the beam flexural hinging. Moreover, the relocation of a plastic hinge in the beam provided more lateral strength for the joint specimens.
机译:有限的信息是关于安装在粘合剂的质量和纤维增强聚合物(FRP)加强和基材材料之间的性能下的粘合强度降解的影响。本研究的主要重点是研究外部FRP复合材料的效率在拯救结构性能并控制具有不同粘合强度降解百分比非线性有限元分析(NLFEA)的钢筋混凝土(RC)束柱关节的失效模式(NLFEA) 。首先,RC光束柱模型针对已发表的实验结果验证,然后扩大以考虑混凝土和FRP复合材料之间的粘合强度的降解百分比的影响(0%(完全键),10%,20%,30 %,40%,50%,60%,70%,80%,90%和100%(控制或未加强的接头)。在故障模式,应力分布,拉动和推动终极方面评估了结构性能负载能力和相应的位移,水平载荷 - 位移滞回环,水平载荷 - 位移包络,位移延展性,能量耗散,刚度降解和等效滞后阻尼因子。NLFEA结果表明,FRP强化技术与粘合强度降解百分比小于30%增强了循环性能(负载能力较高,水平位移较大,较高的位移延展性,较高的能量耗散,较慢的割割刚度Degradatio n)。此外,由于针对强化片提供的适当横向支撑件,在消除FRP复合材料中的任何表面剥离或屈曲时,具有粘合强度降解百分比小于30%的FRP方法。最后,通过将其行为改变为更大的延展性,粘合强度降解百分比小于30%的粘结强度降解百分比可以显着提高强度弱柱条件下的缺陷的接头抗震性能,包括光束弯曲铰链。此外,梁中的塑料铰链的重新定位为关节标本提供了更多的横向强度。

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