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New emerging surface treatment of GFRP Hybrid bar for stronger durability of concrete structures

机译:GFRP混合棒的新型新兴表面处理可增强混凝土结构的耐久性

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In this study, an innovative and smart glass fiber-reinforced polymer (GFRP) hybrid bar was developed for stronger durability of concrete structures. As comparing with the conventional GFRP bar, the smart GFRP Hybrid bar can promise to enhance the modulus of elasticity so that it makes the cracking reduced than the case when the conventional GFRP bar is used. Besides, the GFRP Hybrid bar can effectively resist the corrosion of conventional steel bar by the GFRP outer surface on the steel bar. In order to verify the bond performance of the GFRP Hybrid bar for structural reinforcement, uniaxial pull-out test was conducted. The variables were the bar diameter and the number of strands and pitch of the fiber ribs. Tensile tests showed a excellent increase in the modulus of elasticity, 152.1 GPa, as compared to that of the pure GFRP bar (50 GPa). The stress strain curve was bi-linear, so that the ductile performance could be obtained. For the bond test, the entire GFRP Hybrid bar test specimens failed in concrete splitting due to higher shear strength resulting in concrete crushing as a function of bar deformation. Investigation revealed that an increase in the number of strands of fiber ribs enhanced the bond strength, and the pitch guaranteed the bond strength of 19.1 mm diameter hybrid bar with 15.9 mm diameter of core section of deformed steel bar specimens may be around 13.4 mm. For a comparative study using two representative code equations, the ACI 440 1R-15 equation is regarded as more suitable for predicting the bond strength of GFRP Hybrid bars, whereas the CSA S806-12 prediction is considered too conservative and is largely influenced by the bar diameter. For further study, various geometrical and material properties such as concrete cover, cross-sectional ratio, and surface treatment should be considered.
机译:在这项研究中,开发了一种创新的智能玻璃纤维增​​强聚合物(GFRP)混合棒,以增强混凝土结构的耐久性。与常规GFRP钢筋相比,智能GFRP混合钢筋可以保证提高弹性模量,从而与使用常规GFRP钢筋的情况相比,可以减少裂纹。此外,GFRP混合棒可以有效地抵抗常规钢筋在其上的GFRP外表面的腐蚀。为了验证用于结构增强的GFRP混合棒的粘结性能,进行了单轴拉拔测试。变量是棒的直径,股数和纤维肋的节距。拉伸试验表明,与纯GFRP筋(50 GPa)相比,其弹性模量提高了152.1 GPa。应力应变曲线是双线性的,因此可以获得延展性能。对于粘结力测试,由于较高的抗剪强度,整个GFRP混合钢筋测​​试样品未能通过混凝土劈裂,导致混凝土压碎随钢筋变形而变。研究表明,增加纤维肋的股数可以增强粘结强度,并且该螺距可确保直径为19.1 mm的混合棒与变形钢筋样品的芯部直径为15.9 mm的粘结强度可能约为13.4 mm。对于使用两个代表性代码方程的比较研究,ACI 440 1R-15方程被认为更适合预测GFRP混合钢筋的粘结强度,而CSA S806-12预测被认为过于保守,并且受钢筋的影响很大直径。为了进一步研究,应考虑各种几何和材料特性,例如混凝土覆盖层,横截面比和表面处理。

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