Modeling of FRP Strengthening of RC Girder Curved Soffits

Marwa Zaid Kareem, Qusay W. Ahmed
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Abstract

In recent decades, fiber-reinforced polymer (FRP) is being used more and more to make concrete structures stronger. In this study, nonlinear finite element (FE) analysis was used to model and compare the influence of curvature performance on the behavior of the simply-supported RC curved soffit reinforced girders strengthened with fiber-reinforced polymer plates (CFRP) with a curve height of 5 to 130 mm. In this study, two models with different heights of curve (5 and 130 mm) and references for each model were used. Each model had dimensions that were similar to those of the models used in the program in terms of cross-sectional area and effective span. Simulations were done on the girders to find out how the load moved in relation to the mean range, the failure load, and the failure mode. This was done so that the effect of curvature on the performance of this type of structural element could be understood. The results show that the girder of height of curve is 5 mm more than 130 mm of the analytical ultimate load compared with that experimentally with a difference of only 4.5%, and 4.2% respectively. The load-displacement curves of the experimental tests were accurately simulated with the help of a nonlinear finite element model.
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FRP加固钢筋混凝土梁弯拱的建模
近几十年来,纤维增强聚合物(FRP)被越来越多地用于混凝土结构的加固。本文采用非线性有限元方法,对曲线高度为5 ~ 130 mm的纤维增强聚合物板(CFRP)加固简支RC弯曲软肋梁的曲率性能进行了建模和比较。本研究采用了两种不同曲线高度的模型(5和130 mm),每个模型都有参考文献。每个模型的尺寸在横截面积和有效跨度方面与程序中使用的模型相似。对梁体进行了模拟,分析了荷载与平均范围、破坏荷载和破坏模式之间的关系。这样做是为了理解曲率对这类结构元件性能的影响。结果表明:曲线梁的高度比解析极限荷载130 mm高出5 mm,与试验值相差仅4.5%,与试验值相差4.2%。利用非线性有限元模型精确模拟了试验试验的载荷-位移曲线。
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