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Strain rate effect on interfacial bond behaviour between BFRP sheets and steel fibre reinforced concrete

机译:应变速率对BFRP板与钢纤维混凝土界面粘结性能的影响

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Numerous studies have shown that using steel fibre reinforced concrete (SFRC) and retrofitting with Fibre-reinforced polymer (FRP) composites can improve the strength and ductility of RC structures against impact and explosive loadings. The interface between FRP and concrete has been identified as one of the weakest parts of the FRP strengthened structures subjected to dynamic loading, with debonding failure usually observed as the primary failure mode. In order to properly analysis and design of FRP strengthened reinforced concrete (RC) structures, it is important to understand the dynamic bonding strength between FRP and concrete. An experimental investigation regarding to the dynamic interfacial bond behaviour between basalt fibre (BFRP) sheets and SFRC is carried out in this study. Concrete prisms were made of short steel fibres with three volumetric fractions (i.e. V-f= 0.5%, 1.0%, and 1.5%) to improve the tensile strengths. To achieve different strain rates, the loading velocities varied from 8.33E-6 m/s, 0.1 m/s, 1 m/s, 3 m/s, to 8 m/s. Experimental results show the bond strength and bond-slip were sensitive to strain rate. The loading rate changed the debonding failure modes from concrete substrate failure to interfacial debonding. In addition, the shear resistance of the interface increased with the fibre volume under both quasi-static and dynamic loadings. Based on the testing data, an empirical bond-slip model, incorporating the volumetric fraction of steel fibre and strain rate, is established for FRP-strengthened SFRC structures.
机译:大量研究表明,使用钢纤维增强混凝土(SFRC)并使用纤维增强聚合物(FRP)复合材料进行改型可以提高RC结构抵抗冲击和爆炸载荷的强度和延展性。 FRP与混凝土之间的界面已被确定为FRP加固结构中承受动态载荷的最薄弱部分之一,通常以脱胶破坏为主要破坏模式。为了正确分析和设计FRP增强钢筋混凝土(RC)结构,了解FRP与混凝土之间的动态粘结强度非常重要。这项研究进行了有关玄武岩纤维(BFRP)片和SFRC之间的动态界面粘结行为的实验研究。混凝土棱镜由具有三个体积分数(即V-f = 0.5%,1.0%和1.5%)的短钢纤维制成,以提高抗拉强度。为了获得不同的应变率,加载速度从8.33E-6 m / s,0.1 m / s,1 m / s,3 m / s到8 m / s不等。实验结果表明,粘结强度和粘结滑移对应变率敏感。加载速率将剥离破坏模式从混凝土基底破坏变为界面剥离。另外,在准静态和动态载荷下,界面的抗剪切力随纤维体积的增加而增加。根据测试数据,建立了结合钢纤维的体积分数和应变率的经验结合-滑移模型,用于FRP加固的SFRC结构。

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