Nonlinear bond-slip model for fiber-reinforced polymer laminates externally bonded to thermally damaged concrete

Heng-Da Lv, Wen-Jian Xie, Wan-Yang Gao
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Abstract

This paper presents a novel nonlinear local bond-slip model for fiber-reinforced polymer (FRP) laminates externally bonded to thermally damaged concrete substrates. The proposed model is an extension of an existing two-parameter bond-slip model and incorporates two key parameters including interfacial fracture energy ([Formula: see text]) and interfacial brittleness index ([Formula: see text]). To study the variations of [Formula: see text] and [Formula: see text] with different thermal damage levels of the concrete substrate, an extensive experimental database of shear tests on FRP-to-thermally damaged concrete bonded joints was collected from the existing literature. The [Formula: see text] values were calculated from the peak pull loads with proper consideration of the bond length and width effects, while the [Formula: see text] values were obtained by least-squares regression analysis using experimental load-displacement curves or measured strain distributions in the FRP laminates. The results have indicated that the [Formula: see text] values initially exhibit a slight increase accompanied by mild thermal damage of the concrete substrate after exposure to moderately high temperatures; however, these values significantly decrease when the exposure temperature exceeds 300°C. The [Formula: see text] values initially decrease with high-temperature exposure and stabilize at around 50% of the initial values when the temperatures reach around 400°C. Despite the inherent variability in the test database, the proposed temperature-dependent bond-slip model has demonstrated its accuracy, as demonstrated by the comparisons between the theoretical predictions generated by the model and the corresponding shear test results. This interfacial bond-slip model is expected to serve as a constitutive law to characterize the bond behavior between externally bonded FRP laminates and thermally damaged concrete substrate, thus facilitating the practical application of high-performance FRP composites in the repair and strengthening of thermally or fire-damaged RC members.
与热损伤混凝土外部粘接的纤维增强聚合物层压板的非线性粘接-滑移模型
本文提出了一种新型非线性局部粘结滑移模型,适用于与热损伤混凝土基材外部粘结的纤维增强聚合物(FRP)层压板。该模型是对现有双参数粘结滑移模型的扩展,包含两个关键参数,即界面断裂能([公式:见正文])和界面脆性指数([公式:见正文])。为了研究[公式:见正文]和[公式:见正文]随混凝土基材不同热损伤程度的变化情况,我们从现有文献中收集了大量玻璃纤维与热损伤混凝土粘接接头的剪切试验数据库。公式:见正文]值是在适当考虑粘接长度和宽度影响的情况下,根据峰值拉力荷载计算得出的,而[公式:见正文]值则是利用试验荷载-位移曲线或测量的玻璃钢层压板应变分布,通过最小二乘回归分析得出的。结果表明,[计算公式:见正文]值在暴露于中度高温后最初会出现轻微上升,并伴随着混凝土基底的轻微热损伤;然而,当暴露温度超过 300°C 时,这些值会显著下降。公式:见正文]值最初随着高温暴露而降低,当温度达到约 400°C 时,稳定在初始值的 50%左右。尽管试验数据库存在固有的变异性,但所提出的随温度变化的粘结滑移模型已证明了其准确性,这一点可从模型生成的理论预测值与相应的剪切试验结果之间的比较中得到证实。该界面粘结滑移模型有望成为表征外部粘结 FRP 层压板与热损伤混凝土基材之间粘结行为的构成法则,从而促进高性能 FRP 复合材料在热损伤或火灾损伤 RC 构件修复和加固中的实际应用。
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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