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Theoretical Solution for Fatigue Debonding Growth and Fatigue Life Prediction of FRP-Concrete Interfaces

机译:FRP-混凝土界面疲劳剥离增长和疲劳寿命预测的理论解

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摘要

This paper presents an analytical solution for the evolution and distribution of shear stresses along the entire bond length of FRP-concrete interfaces due to mode-II fatigue loading. The creep-fatigue interaction and fatigue crack growth after debonding initiation are incorporated into a nonlinear interfacial constitutive law. While the creep-fatigue interaction is represented by the degradation of the interfacial stiffness, the debond growth is governed by a form of the Paris equation and the fracture energy ratio, G_(max)/G_c. Furthermore, a new form of energy ratio is adopted to be debond-dependent. Through a series of experimental double-lap shear specimens, the results showed that the debond growth rate (da/dN) along the FRP-concrete interfaces diminishes with fatigue cycles and that 30% of the static bond capacity of the FRP-concrete interface can be considered as the endurance- limit of fatigue loading for FRP-strengthened beams. The agreement between the theoretical predictions and experimental results is valid, with a good degree sf accuracy.
机译:本文为II型疲劳载荷引起的FRP-混凝土界面整个粘结长度上的剪应力的演化和分布提供了一种解析解决方案。脱粘开始后的蠕变疲劳相互作用和疲劳裂纹扩展被纳入非线性界面本构定律。虽然蠕变-疲劳相互作用以界面刚度的下降表示,但脱粘增长是由Paris方程和断裂能比G_(max)/ G_c决定的。此外,采用了一种新的能量比率形式,该能量比率取决于脱键。通过一系列实验性的双搭接剪切试样,结果表明,沿着FRP-混凝土界面的脱粘生长速率(da / dN)随着疲劳循环而减小,并且FRP-混凝土界面的30%静态粘结能力可以被认为是FRP加固梁疲劳极限的承受极限。理论预测和实验结果之间的一致性是有效的,并且具有较高的科幻精度。

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