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首页> 外文期刊>Journal of Composites for Construction >Experimental Investigation of an Appropriate Anchorage System for Flange-Bonded Carbon Fiber-Reinforced Polymers in Retrofitted RC Beam-Column Joints
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Experimental Investigation of an Appropriate Anchorage System for Flange-Bonded Carbon Fiber-Reinforced Polymers in Retrofitted RC Beam-Column Joints

机译:加装RC梁柱节点的法兰粘结碳纤维增强聚合物锚固系统的实验研究

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External application of fiber-reinforced polymers (FRPs) for the seismic retrofit/repair of reinforced concrete (RC) beam-column joints has been extensively investigated in the last decade. However, the majority of the suggested FRP schemes follow the application of the composite sheets on the webs of the beam and the joint core which would be impeded in real three-dimensional structures due to the presence of cross beams and slabs. In addition, upgrading code-compliant RC joints using a practical FRP scheme needs to be scrutinized in detail. A desirable retrofitting scheme for this type of joints may follow the application of composite sheets on the top and bottom sides (flanges) of the beam and columns aimed at increasing the flexural strength of beam-column joints. However, the major issue of concern for a flange-bonded FRP is providing adequate development length from the critical section to transfer the FRP tensile forces from beam to columns and vice versa. To overcome this concern, a novel anchorage system for flange-bonded carbon FRP (CFRP) is developed in this study and its efficiency is evaluated through a comprehensive experimental program. In total, nine small-scale (1/2.85) beam-column test specimens, including two control specimens, one damaged specimen, and six retrofitted specimens were considered. Both monotonic and cyclic loading regimes were implemented to estimate, albeit approximately, the seismic responses of the test specimens. The load-carrying capacity, initial stiffness, displacement ductility, and dissipated energy of beam-column joint subassemblies are compared before and after the application of the CFRP retrofits. The results showed a remarkable improvement in the load-carrying capacity and elastic stiffness of CFRP-retrofitted specimens, thus confirming the efficiency of the suggested anchorage system. In addition, and subject to specific circumstances, the plastic hinge can also be relocated away from the beam-column interface.
机译:在过去的十年中,对纤维增强聚合物(FRPs)在钢筋混凝土(RC)梁柱节点的抗震改造/修复中的外部应用进行了广泛的研究。但是,大多数建议的FRP方案是在梁和节点芯的腹板上应用复合板之后,由于存在横梁和平板,在实际的三维结构中会受到阻碍。此外,需要详细检查使用实用的FRP方案升级符合规范的RC接头。对于这种类型的接头,理想的改造方案可以是在梁和柱的顶面和底面(凸缘)上应用复合板,以提高梁柱接头的抗弯强度。但是,对于法兰粘结的FRP,主要关注的问题是从临界截面提供足够的展开长度,以将FRP拉力从梁传递到立柱,反之亦然。为了克服这一担忧,本研究开发了一种新型的法兰粘结碳纤维增强塑料(CFRP)锚固系统,并通过全面的实验程序评估了其效率。总共考虑了9个小规模(1 / 2.85)的梁柱测试样品,包括2个对照样品,1个损坏的样品和6个改型的样品。实施单调加载和循环加载两种方式来估计(尽管近似)试样的地震响应。在应用CFRP改造之前和之后,比较了梁柱接头子组件的承载能力,初始刚度,位移延性和耗散能量。结果表明,CFRP加固标本的承载能力和弹性刚度有了显着提高,从而证实了建议的锚固系统的效率。另外,在特定情况下,塑料铰链也可以从梁柱界面移开。

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