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首页> 外文期刊>Advances in civil engineering >Failure Analysis of Locally Damaged Slender Steel Bars Strengthened with CFRP Composites: Experiments, Theory, and Computational Simulations
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Failure Analysis of Locally Damaged Slender Steel Bars Strengthened with CFRP Composites: Experiments, Theory, and Computational Simulations

机译:CFRP复合材料加强局部损坏细长钢筋的故障分析:实验,理论和计算模拟

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Carbon fiber-reinforced polymer/plastic (CFRP) composites bear attractive performance in resistance to tension, fatigue, and corrosion and, thus, have been recognized as a promising candidate for repairing and strengthening steel structures in engineering. Here, we combine experiments, theory, and numerical simulations to elucidate how the location and degree of local damages, as well as the reinforcement mode, affect the stability of slender steel bars repaired by CFRP. The deformation, failure mode, and the critical buckling load of the reinforced steel flat bars subjected to axial compressive forces are experimentally evaluated. We show that all tested specimens exhibit buckling failure, before which the damaged steel bars have entered an elastic-plastic stage. Our theoretical analysis provides an upper bound for the critical force, which is sensitive not only to the damage degree but also to the damage location. Damage locating at the middle regime of the specimens will remarkably reduce stability of the steel bars, but an optimized combination of wrapping method and number of CFRP layers can restore and even enhance the stability of the damaged structures beyond the undamaged counterparts. Finite element simulations are implemented in the same scenario as experiments, showing good agreement with our measurements. Our findings suggest that, to improve the stability of the damaged steel bars reinforced by CFRP, the load carrying capacity of the the bars, the number of CFRP layers, and the construction convenience should be taken into account.
机译:碳纤维增强聚合物/塑料(CFRP)复合材料具有耐受张力,疲劳和腐蚀性的耐受性,因此已被认为是用于修复和加强工程中的钢结构的有希望的候选者。在这里,我们将实验,理论和数值模拟结合起来,以阐明局部损伤的位置和程度以及加强模式如何影响CFRP修复的细长钢筋的稳定性。经过实验评估经受轴向压缩力的增强钢扁平条的变形,故障模式和关键屈曲负荷。我们表明,所有测试的标本都表现出屈曲失效,在此之前,损坏的钢筋进入弹性级。我们的理论分析为临界力提供了一个上限,这不仅对损坏程度敏感,而且对损坏位置敏感。定位在标本的中间条件下的损坏将显着降低钢筋的稳定性,但是优化的包装方法和CFRP层数量可以恢复且增强损坏结构的稳定性超出未损坏的对应物。有限元模拟在与实验相同的情况下实现,与我们的测量显示良好。我们的研究结果表明,为了提高CFRP加强的损坏钢筋的稳定性,应考虑杠杆的负载承载力,CFRP层的数量和施工便利性。

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