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Numerical modelling of carbon fibre-reinforced polymer and hybrid reinforced concrete beams in fire

机译:碳纤维增强聚合物和混杂增强混凝土梁在火灾中的数值模拟

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摘要

Investigation on the fire resistance of fibre-reinforced polymer (FRP) reinforced concrete (RC) is essential for increased application of FRP bars in the construction industry. Experimental tests for determining the fire resistance of RC elements tend to be expensive and time-consuming. Although numerical models provide an effective alternative to these tests, their use in case of FRP RC structures is hindered because of the insufficient constitutive laws for FRP bars at elevated temperatures. This paper presents the details of a numerical modelling work that was carried out for simply supported carbon FRP (CFRP) and hybrid (steel-FRP) bar RC beams at elevated temperatures. Constitutive laws for determining temperature-dependent strength and stiffness properties of CFRP bars are proposed. Numerical models based on finite element modelling were employed for the rational analysis of beams using the proposed constitutive laws. The behaviour of concrete was simulated by means of a smeared crack model based on the tangent stiffness solution algorithm. The employed numerical models were validated against previous experimental results. The theoretical rebar stresses were calculated in both the FRP and steel bars, and the differences are discussed.
机译:对纤维增强聚合物(FRP)增强混凝土(RC)的耐火性进行研究对于在建筑行业增加FRP筋的应用至关重要。用于确定RC元件耐火性的实验测试往往既昂贵又耗时。尽管数值模型提供了这些测试的有效替代方法,但由于在高温下FRP筋的本构定律不足,因此无法在FRP RC结构中使用它们。本文介绍了在高温下对简支碳FRP(CFRP)和混合(steel-FRP)钢筋RC梁进行的数值建模工作的详细信息。提出了确定CFRP钢筋随温度变化的强度和刚度特性的本构律。基于所提出的本构定律,基于有限元建模的数值模型被用于梁的合理分析。通过基于切线刚度求解算法的涂片裂缝模型模拟了混凝土的性能。所采用的数值模型已针对先前的实验结果进行了验证。计算了FRP和钢筋中的理论钢筋应力,并讨论了差异。

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