Fatigue-induced fracture assessment for FRP-steel bonding joints after seawater exposure

IF 3.9 2区 工程技术 Q1 ENGINEERING, CIVIL Structures Pub Date : 2024-08-30 DOI:10.1016/j.istruc.2024.107209
Jie Liu, Yang Wei, Qi Zhao, Yirui Zhang, Kaiqi Zheng
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Abstract

This paper investigates fatigue durability of FRP-steel double-lap shear bonded structure in seawater environment. Three simulated environments (original-salinity seawater dry-wet cycle, triple-salinity seawater dry-wet cycle, and triple-salinity seawater immersion) with 30-, 60-, and 90-day maintenance duration are tested. Experimental results indicate that both the quasit-static and fatigue strength are degraded by the seawater maintenance, and longer maintenance will lead to continued deterioration of the bonded joints. The failure/damage of bonded joints primarily originates from the bonding failure in the docking zone and extend towards the two ends. For a specific bonded joint, the load amplitude (∆) and cycle number () can be approximated fitted by a linear logarithmic curve. Based on this observation, a prediction model of the cycle number () for the bonded joints is proposed, and comparison demonstrated that the prediction model can effectively assess the fatigue strength of GFRP-steel double-lap shear bonded joints after seawater maintenance. The findings of this study can offer both theoretical and experimental foundations for assessing the durability of FRP-steel bonded structures in seawater corrosion environments.
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海水暴露后 FRP-钢粘接接头的疲劳诱发断裂评估
本文研究了玻璃钢-钢双层剪切粘结结构在海水环境中的疲劳耐久性。测试了 30 天、60 天和 90 天维护期的三种模拟环境(原始盐度海水干湿循环、三重盐度海水干湿循环和三重盐度海水浸泡)。实验结果表明,海水养护会降低准静态强度和疲劳强度,而更长时间的养护会导致粘接接头的持续退化。粘接接头的失效/损坏主要源于对接区的粘接失效,并向两端延伸。对于特定的粘接接头,载荷振幅(∆)和周期数()可通过线性对数曲线近似拟合。在此基础上,提出了粘接接头循环数()的预测模型,并通过比较证明了该预测模型能有效评估 GFRP-钢双搭接剪切粘接接头在海水维护后的疲劳强度。该研究结果可为评估海水腐蚀环境中玻璃钢-钢粘接结构的耐久性提供理论和实验基础。
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来源期刊
Structures
Structures Engineering-Architecture
CiteScore
5.70
自引率
17.10%
发文量
1187
期刊介绍: Structures aims to publish internationally-leading research across the full breadth of structural engineering. Papers for Structures are particularly welcome in which high-quality research will benefit from wide readership of academics and practitioners such that not only high citation rates but also tangible industrial-related pathways to impact are achieved.
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