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Experimental and finite element studies on the flexural behavior of reinforced concrete elements strengthened with hybrid FRP technique

机译:混合FRP加固钢筋混凝土构件受弯性能的试验与有限元研究。

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The objective of this investigation is to assess the effectiveness of hybrid fiber reinforced polymer (FRP) strengthening on the overall behavioral improvement of reinforced concrete (RC) beams under flexure. Eight square RC beams were cast and strengthened using different FRP techniques including (i) near surface mounting (NSM), (ii) external bonding (EB) and (iii) hybrid strengthening using a combination of NSM carbon FRP laminates and EB CFRP fabric. Peak moment capacity was calculated analytically by enforcing the sectional equilibrium using the strain compatibility procedure. A micro plane based nonlinear three-dimensional finite element (FE) model was developed to simulate the behavior of the RC beams with and without FRP strengthening. Experimental results revealed that hybrid FRP strengthening could increase the strength by 160%. Moreover, the ultimate displacement of hybrid FRP strengthened beams improved significantly when compared to only the NSM technique. Only NSM strengthening improved the peak strength by 85% but had a brittle bond failure. Only EB strengthening improved the ductility of the flexural members due to confinement but did not significantly increase the strength. Predictions of the FE model correlated well with the experimental results and revealed that minimum edge distance for NSM laminates has to be ensured for preventing premature edge de-bonding failures.
机译:这项研究的目的是评估混合纤维增强聚合物(FRP)加固对挠曲下钢筋混凝土(RC)梁总体性能的影响。使用不同的FRP技术浇铸和加固八根方形RC梁,包括(i)近表面安装(NSM),(ii)外部粘结(EB)和(iii)使用NSM碳FRP层压板和EB CFRP织物的混合强化。通过使用应变相容性程序强制截面平衡来分析计算峰值弯矩承载力。建立了基于微平面的非线性三维有限元(FE)模型,以模拟带有和不带有FRP加固的RC梁的行为。实验结果表明,混合FRP加固可以使强度提高160%。此外,与仅NSM技术相比,混合FRP增强梁的极限位移得到了显着改善。只有NSM增强可将峰值强度提高85%,但粘结脆性破坏。由于限制,只有EB增强可以改善挠曲构件的延展性,但不会显着增加强度。有限元模型的预测与实验结果密切相关,并揭示了必须确保NSM层压板的最小边缘距离,以防止过早的边缘脱胶失败。

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