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Experimental and analytical investigation on structural behavior of two-layer fiber-reinforced concrete beams reinforced with steel and GFRP rebars

机译:用钢和GFRP钢筋加固两层纤维钢筋混凝土梁结构行为的实验分析研究

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The combination of plain concrete and fiber-reinforced concrete in beams in the form of two-layer composite members can be an efficient solution to improve the flexural behavior, reach the optimum distribution of steel fibers, and reduce the cost of these structural elements. On the other hand, the glass fiber reinforced polymer (GFRP) rebar can serve as a proper alternative for the steel rebar in reinforced concrete beams considering its superior strength to weight ratio compared with the steel rebar. The objective of this research was to evaluate the structural performance of two-layer fiber-reinforced concrete beams with glass fiber-reinforced polymer (GFRP) and steel rebars under quasi-static loads. For this purpose, three groups of concrete beams reinforced with GFRP rebars and four groups of concrete beams reinforced with steel rebars were fabricated with one- and two-layer sections containing different volume fractions of steel fibers (V-f = 0, 0.75, and 1.5%), without using shear reinforcement. The longitudinal reinforcement ratios were 0.37 and 0.73% for GFRP and 1.05 and 2.1% for steel rebars, and the concrete compressive strengths were 33 and 64 MPa. The fabricated beams were then tested under three-point bending. The results of the layered concrete beams showed that adding fibers to the compression zone of the section led to a higher ductility in both GFRP rebar- and steel rebar-reinforced beams, while adding fibers to the tensile zone led to a higher ultimate flexural strength. Furthermore, an increase in the ratio of GFRP and steel reinforcement together with a greater concrete compressive strength in the layered beams enhanced their flexural performance in terms of load-carrying capacity, flexural stiffness, and ductility; however, replacing steel rebars with GFRP ones led to a decrease in these parameters. Finally, the flexural response of the layered concrete beams reinforced with GFRP and steel rebars was predicted via sectional analysis and using empirical equations developed for the mechanical properties of the constituent materials. The analytical results indicated a good agreement between the proposed model and the experimental results, to the extent that the model was able to properly predict the flexural behavior of the layered concrete beams in terms of the ultimate load-carrying capacity and mid-span deflection. (C) 2020 Elsevier Ltd. All rights reserved.
机译:普通混凝土和纤维钢筋混凝土在双层复合构件的形式中的组合可以是提高弯曲行为的有效解决方案,达到钢纤维的最佳分布,并降低这些结构元件的成本。另一方面,玻璃纤维增​​强聚合物(GFRP)钢筋可以作为钢筋混凝土梁中的钢钢筋的适当替代方案,其考虑其与钢钢筋相比其优越的力量与重量比相比。该研究的目的是评估双层纤维增强混凝土梁的结构性能,玻璃纤维增​​强聚合物(GFRP)和钢钢筋在准静态载荷下。为此目的,使用含有不同体积分数的钢纤维(VF = 0,0.75和1.5%,用GFRP钢筋和四组混凝土梁和四组用钢钢筋加强的混凝土梁组成了三组混凝土梁(Vf = 0,0.75和1.5%) ),不使用剪切钢筋。 GFRP的纵向增强比为0.37和0.73%,钢钢筋的1.05和2.1%,混凝土抗压强度为33和64MPa。然后在三点弯曲下测试制造的光束。层状混凝土梁的结果表明,将纤维添加到该部分的压缩区导致GFRP钢筋和钢钢筋加强梁中的延展性更高,同时将纤维添加到拉伸区导致较高的极限弯曲强度。此外,在负载能力,弯曲刚度和延展方面,GFRP和钢筋比与层状梁中更大的混凝土压缩强度的比率提高了它们的抗弯性能。但是,用GFRP替换钢钢筋导致这些参数的减少。最后,通过截面分析预测了用GFRP和钢钢筋加强的层状混凝土梁的弯曲响应,并使用为构成材料的机械性能开发的经验方程。分析结果表明了所提出的模型与实验结果之间的良好一致性,在模型能够在终极承载能力和中跨偏转方面正确地预测层状混凝土梁的弯曲行为。 (c)2020 elestvier有限公司保留所有权利。

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