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Analysis on Adhesively-Bonded Joints of FRP-steel Composite Bridge under Combined Loading: Arcan Test Study and Numerical Modeling

机译:组合荷载作用下FRP-钢组合桥胶结节点分析:Arcan试验研究与数值模拟

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摘要

The research presented in this paper is an experimental study and numerical analysis on mechanical behavior of the adhesively-bonded joint between FRP sandwich bridge deck and steel girder. Generally, there are three typical stress states in the adhesively-bonded joint: shear stress, tensile stress, and combination of both. To realize these stress states in the adhesively-bonded joint during tests, a specific loading device is developed with the capacity of providing six different loading angles, which are 0°(pure tension), 18°, 36°, 54°, 72° and 90°(pure shear). Failure modes of adhesively-bonded joints are investigated. It indicates that, for the pure shear loading, the failure mode is the cohesive failure (near the interface between the adhesive layer and the steel support) in the adhesive layer. For the pure tensile and combined loading conditions, the failure mode is the combination of fiber breaking, FRP delamination and interfacial adhesion failure between the FRP sandwich deck and the adhesive layer. The load-bearing capacities of adhesive joints under combined loading are much lower than those of the pure tensile and pure shear loading conditions. According to the test results of six angle loading conditions, a tensile/shear failure criterion of the adhesively-bonded joint is obtained. By using Finite Element (FE) modeling method, linear elastic simulations are performed to characterize the stress distribution throughout the adhesively-bonded joint.
机译:本文所进行的研究是对FRP夹心桥面板与钢梁之间的粘结节点进行力学性能的实验研究和数值分析。通常,粘合接头中存在三种典型的应力状态:剪切应力,拉伸应力以及两者的组合。为了在测试过程中在粘合接头中实现这些应力状态,开发了一种特殊的加载设备,该设备可以提供六个不同的加载角度,分别为0°(纯张力),18°,36°,54°,72°和90°(纯剪切)。研究了胶接接头的失效模式。这表明,对于纯剪切载荷,破坏模式是粘结层中的内聚破坏(在粘结层和钢载体之间的界面附近)。对于纯拉伸和组合载荷条件,失效模式是纤维断裂,FRP分层和FRP夹心板与粘合层之间的界面粘合失效的组合。在组合载荷下,胶粘接头的承载能力远低于纯拉伸和纯剪切载荷条件下的承载能力。根据六个角度载荷条件的测试结果,得出了胶接接头的拉伸/剪切破坏准则。通过使用有限元(FE)建模方法,进行了线性弹性仿真,以表征整个胶接接头中的应力分布。

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