嵌入式斜向U形CFRP网格-PCM加固RC梁抗剪试验研究与数值模拟

Experimental study and numerical simulation on shear strengthening of RC beams with embedded diagonal U-shaped CFRP grid-PCM

  • 摘要: 为探究嵌入式斜向(45°)U形碳纤维增强复合材料(CFRP)网格与聚合物水泥砂浆(PCM)复合体系加固钢筋混凝土(RC)梁的抗剪性能,本研究开展了四点静力加载试验和有限元分析,对CFRP网格层数、条带数量及布置方式对加固梁受力行为的影响进行了初步对比。通过对比不同FRP有效应变模型,评估了CFRP网格的抗剪贡献,并基于试验反算结果建立了U形CFRP网格条带的有效应变初步经验修正关系。试验结果表明:采用嵌入式斜向U形CFRP网格-PCM加固使得RC梁剪切开裂荷载提高了16.67%~25.00%、极限荷载提高了23.54%~31.02%,并延缓了裂缝扩展;在本研究试验条件下,增加CFRP网格层数或条带数量均使试件承载力呈现一定提高趋势;间隔布置试件的极限荷载高于连续布置试件,但其CFRP网格应变分布相对不均匀。数值模拟结果能够较好地反映试验观察到的裂缝发展情况;所建立的FRP网格有效应变初步经验修正关系,可在本研究试验参数范围内减小既有模型对CFRP网格抗剪贡献的计算偏差。

     

    Abstract: To investigate the shear behavior of reinforced concrete (RC) beams strengthened with an embedded inclined (45°) U-shaped carbon fiber reinforced polymer (CFRP) grid and polymer cement mortar (PCM) composite system, four-point static loading tests and finite element analysis were carried out. The effects of the number of CFRP grid layers, the number of strips, and the layout pattern on the mechanical behavior of the strengthened beams were preliminarily compared. By comparing different FRP effective strain models, the shear contribution of the CFRP grid was evaluated, and a preliminary empirical correction relationship for the effective strain of U-shaped CFRP grid strips was established based on the test back-calculation results. The test results showed that the embedded inclined U-shaped CFRP grid-PCM strengthening system increased the shear cracking load of RC beams by 16.67%–25.00% and the ultimate load by 23.54%–31.02%, and delayed crack propagation. Under the test conditions of this study, increasing the number of CFRP grid layers or strips led to a certain increase in the bearing capacity of the specimens. The ultimate load of the specimen with spaced strips was higher than that of the specimen with continuous strips, but its CFRP grid strain distribution was less uniform. The numerical results could reasonably reflect the crack development process observed in the tests. The established preliminary empirical correction relationship for effective strain could reduce the calculation deviation of existing models for the shear contribution of the CFRP grid within the test parameter range of this study.

     

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