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Behaviour of Shear-Critical Reinforced Concrete Beams Retrofitted with Externally Applied Fibre-Reinforced Polymers.

机译:外部施加纤维增强聚合物加固的抗剪钢筋混凝土梁的性能。

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摘要

Ageing infrastructure that is shear deficient and may be at risk of brittle collapse, particularly in seismically active regions, can be economically strengthened using externally bonded fibre-reinforced polymers (FRP). Although many studies have been conducted on small-scale specimens subject to monotonic loading, little experimental data exists for large-scale specimens and those tested under reversed cyclic loading to simulate a seismic event.;An experimental study of large-scale (400 mm × 650 mm) beam specimens strengthened in shear with FRP was conducted to examine the effects of reversed cyclic loading and to quantify material shear strength contributions. Testing showed that FRP retrofits were highly effective at improving shear performance and were not adversely affected by reversed cyclic loading prior to the occurrence of flexural yielding. The shear resistance attributed to concrete was found to remain relatively consistent with reversed cyclic loading prior to flexural yielding, after which point concrete strength decay was apparent. The loss of concrete shear resistance directly influenced the rate of FRP straining and the achievable ductility.;An analytical model using the Modified Compression Field Theory (MCFT) was developed for externally bonded FRP reinforcement to describe the experimental behaviour and to evaluate the accuracy of current FRP design methods. Failures were accurately modelled when appropriate FRP strain limits were used for the ultimate strength and for the stress transfer capacity across the shear crack. Proposed FRP strain limits were developed considering the strain distribution along the crack plane. In addition, improved strain limits incorporate the effect of rupture failure due to stress concentrations in the FRP wrapped around the beam corners. The proposed FRP formulations offer improved accuracy over the current FRP design methods (CSA S6-06 and ACI 440.2R-08), which suggest a broadly applied maximum strain limit of 0.004 mm/mm, which was determined to be overly conservative for FRP rupture failures.
机译:可以使用外部粘合的纤维增强聚合物(FRP)在经济上加强剪切不足且可能存在脆性塌陷风险的老化基础设施,尤其是在地震活跃地区。尽管已经对承受单调载荷的小尺寸样本进行了许多研究,但是对于大尺寸样本以及在反向循环负荷下进行模拟地震事件测试的样本,几乎没有实验数据。;大规模(400 mm×进行了FRP加固的650 mm)梁试件,以检查反向循环荷载的影响并量化材料的抗剪强度。测试表明,FRP改型在提高剪切性能方面非常有效,并且在弯曲屈服发生之前不受反向循环载荷的不利影响。发现归因于混凝土的抗剪强度在弯曲屈服之前与反向循环载荷保持相对一致,此后混凝土强度明显下降。混凝土抗剪强度的损失直接影响了FRP的应变率和可达到的延性。;建立了使用修正压缩场理论(MCFT)的外粘结FRP增强分析模型,以描述实验行为并评估电流的准确性玻璃钢设计方法。当使用适当的FRP应变极限来获得极限强度和整个剪切裂缝上的应力传递能力时,可以对破坏进行精确建模。考虑到沿裂纹平面的应变分布,提出了建议的FRP应变极限。另外,改进的应变极限包括由于包裹在梁角周围的FRP中的应力集中而引起的断裂破坏的影响。提议的FRP配方提供了优于当前FRP设计方法(CSA S6-06和ACI 440.2R-08)的准确性,这表明广泛应用的最大应变极限为0.004 mm / mm,这被确定为FRP断裂过于保守失败。

著录项

  • 作者

    Colalillo, Michael Anthony.;

  • 作者单位

    University of Toronto (Canada).;

  • 授予单位 University of Toronto (Canada).;
  • 学科 Engineering Civil.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 467 p.
  • 总页数 467
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:42:33

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