Flexural behavior of concrete beams hybrid-reinforced with glass fiber-reinforced polymer, carbon fiber-reinforced polymer, and steel rebars

Hilal Terzioglu, Meltem Eryilmaz Yildirim, Omer Karagoz, E. Unluoglu, Mizan Dogan
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Abstract

The utilization of fiber-reinforced polymer (FRP) reinforcements in structural design is increasing due to their non-corrosive nature. However, the anisotropic features and linear elastic behavior of FRP rebars have led researchers to explore the use of hybrid combinations of FRP and steel reinforcements. Current codes and guidelines predominantly focus on the design of glass FRP (GFRP) reinforced structural elements, leaving a gap in incorporating the hybrid use of FRP-steel combinations and different types of FRP materials, such as carbon FRP (CFRP). This study conducted experimental investigations on concrete beams reinforced with GFRP, CFRP, and hybrid (GFRP-steel and CFRP-steel in combination) rebars, comparing the results with theoretical models. Ten full-scale beams were tested under monotonic loading. Test results revealed that existing codes overestimate GFRP reinforced beam displacements while underestimating CFRP reinforced beam displacements. A reduction factor is proposed for the effective moment of inertia expression given by ACI 440.11-22 to predict the deflections of CFRP reinforced and hybrid reinforced beams. The experimental data for CFRP and hybrid reinforced concrete beams align well with the predictions calculated using the proposed equations.
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用玻璃纤维增强聚合物、碳纤维增强聚合物和钢筋混合加固的混凝土梁的抗弯行为
纤维增强聚合物(FRP)钢筋因其无腐蚀性,在结构设计中的应用日益广泛。然而,玻璃纤维增强聚合物钢筋的各向异性特征和线性弹性行为促使研究人员探索使用玻璃纤维增强聚合物和钢筋的混合组合。目前的规范和指南主要关注玻璃玻璃钢(GFRP)加固结构件的设计,在将玻璃钢-钢筋组合和不同类型的玻璃钢材料(如碳玻璃钢(CFRP))混合使用方面存在空白。本研究对使用 GFRP、CFRP 和混合(GFRP-钢和 CFRP-钢组合)钢筋加固的混凝土梁进行了实验研究,并将结果与理论模型进行了比较。在单调荷载下对十根全尺寸梁进行了测试。测试结果表明,现有规范高估了 GFRP 加固梁的位移,而低估了 CFRP 加固梁的位移。针对 ACI 440.11-22 所给出的有效惯性矩表达式,提出了一个折减系数,以预测 CFRP 加固梁和混合加固梁的挠度。CFRP 加固混凝土梁和混合加固混凝土梁的实验数据与使用所提公式计算得出的预测结果非常吻合。
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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