Various Methods of Strengthening Reinforced Concrete Beam-Column Joint Subjected Earthquake-Type Loading Using Fibre-Reinforced Polymers: A Critical Review

Ridwan Ridwan, Yaser Jemaa, E. Yuniarto
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Abstract

Fibre-reinforced polymer (FRP) composites are extensively employed in concrete technology due to their exceptional mechanical strength and durability.  They serve a dual purpose, not only reinforcing damaged elements but also supporting heavier service loads and addressing long-term concerns in new infrastructure projects. Consequently, the objective of this review is to establish a comprehensive research database that focuses on evaluating the strengthening behaviour of reinforced concrete (RC) beam-column joints (BCJ) under earthquake loads through diverse types and application methods of FRP composites. The efficacy of these strengthening techniques is assessed by considering factors such as the loading capacity and dissipated energy of RC BCJ versus the joint confinement index provided by the fibre in the joint area. Through this state-of-the-art review, it becomes evident that FRP composites effectively enhanced the normalized load of specimens up to 27 kN/?MPa and enhanced the dissipated energy until 558.6 kN-mm for the case of specimens with a lower confinement index, less than 0.3. Additionally, the specimen strengthened with the deep embedment (DE) method resulted in a moderate normalized load and dissipated energy compared to those strengthened with the external bonded (EB) method. The test results indicated that the average normalized load and dissipated energy of the DE-strengthening method was 93% and 28.5% compared to that of the EB-strengthening method. These findings reveal that FRP composites offer distinct advantages in terms of load capacity and dissipated energy when used for strengthening earthquake-affected RC BCJ. Finally, based on the compilation of the previous works, this research proposes several techniques for utilizing FRP composites to enhance RC BCJ subjected to earthquake load.
纤维增强聚合物加固地震荷载下钢筋混凝土梁柱节点的各种方法综述
纤维增强聚合物(FRP)复合材料因其优异的机械强度和耐久性而广泛应用于混凝土技术。它们具有双重作用,不仅可以加固损坏的部件,还可以支持更重的服务负载,并解决新基础设施项目中的长期问题。因此,本综述的目的是建立一个全面的研究数据库,重点是通过不同类型和FRP复合材料的应用方法来评估地震荷载下钢筋混凝土(RC)梁柱节点(BCJ)的加固行为。通过考虑RC BCJ的承载能力和耗散能量与关节区域纤维提供的关节约束指数等因素来评估这些强化技术的有效性。通过这项最新的研究,FRP复合材料可以有效地将试件的归一化载荷提高到27 kN/?当约束系数小于0.3时,耗散能达到558.6 kN-mm。此外,与采用外粘结(EB)方法加固的试件相比,采用深埋(DE)方法加固的试件具有中等的归一化载荷和耗散能量。试验结果表明,de强化法的平均归一化荷载和耗散能分别比eb强化法高93%和28.5%。这些研究结果表明,FRP复合材料在用于加固地震影响的RC BCJ时,在承载能力和耗散能量方面具有明显的优势。最后,在总结前人研究成果的基础上,提出了几种利用FRP复合材料增强地震荷载作用下RC BCJ的技术。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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