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Glass Fiber Reinforced Polymer (GFRP) Bars for Enhancing the Flexural Performance of RC Beams Using Side-NSM Technique

机译:玻璃纤维增​​强聚合物(GFRP)筋使用侧面NSM技术增强RC梁的抗弯性能

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摘要

Reinforced concrete (RC) structures require strengthening for numerous factors, such as increased load, modification of the structural systems, structural upgrade or errors in the design and construction stages. The side near-surface mounted (SNSM) strengthening technique with glass fiber-reinforced polymer (GFRP) bars is a relatively new emerging technique for enhancing the flexural capacities of existing RC elements. Nine RC rectangular beams were flexurally strengthened with this technique and tested under four-point bending loads until failure. The main goal of this study is to optimize the structural capacity of the RC beams by varying the amount of strengthening reinforcement and bond length. The experimental test results showed that strengthening with SNSM GFRP bars significantly enhanced the flexural responses of the specimens compared with the control specimen. The first cracking and ultimate loads, energy absorption capacities, ductility and stiffness were remarkably enhanced by the SNSM technique. It was also confirmed that the bond length of the strengthened reinforcement greatly influences the energy absorption capacities, ductility and stiffness. The effect of the bond length on these properties is more significant compared to the amount of strengthening reinforcement.
机译:钢筋混凝土(RC)结构需要对许多因素进行加固,例如增加的荷载,结构系统的修改,结构升级或设计和施工阶段的错误。使用玻璃纤维增​​强聚合物(GFRP)棒的侧面近表面安装(SNSM)增强技术是一种新兴的新兴技术,用于增强现有RC元件的抗弯能力。九个RC矩形梁通过该技术进行了抗弯加固,并在四点弯曲载荷下进行了测试,直至失效。这项研究的主要目的是通过改变加强筋的数量和粘结长度来优化RC梁的结构承载力。实验测试结果表明,与对照样品相比,使用SNSM GFRP筋加强可显着增强样品的挠曲响应。 SNSM技术显着提高了首次开裂和极限载荷,能量吸收能力,延展性和刚度。还证实了增强的增强材料的粘结长度极大地影响了能量吸收能力,延展性和刚度。与增强长度相比,键长对这些性能的影响更为显着。

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