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Performance of reinforced concrete slabs under hydrocarbon fire exposure

机译:碳氢化合物火灾下钢筋混凝土板的性能

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摘要

This paper presents numerical results on the fire resistance of reinforced concrete (RC) slabs subjected to the severe hydrocarbon fire exposure. The hydrocarbon fire curve represents a possible fire scenario in parking structures, tunnels, and in petro-chemical facilities. A three-dimensional (3D) nonlinear finite element (FE) model is developed to simulate the thermo-mechanical response of a RC slab that incorporates temperature dependent thermal and mechanical properties of concrete and steel reinforcement, respectively. Transient thermal-stress analysis is performed to study the cross-sectional temperature distribution and resulting deflections in the slab during simultaneous application of heat exposure and sustained loading. The predicted temperature distribution within the slab and mid-span deflection are compared with published experimental data. The predicted FE results are in good agreement with the experimental data throughout entire fire exposure duration. The validated FE model is applied in a parametric study to study the fire resistance of RC slabs under different slab configurations and hydrocarbon fire exposure. The varied parameters included fire exposure scenario, service load level, aggregate type, and concrete cover thickness. Results from the numerical analysis showed that hydrocarbon fire exposure has a significant influence on the fire resistance of RC slabs. In particular, the fire resistance of a slab under hydrocarbon fire exposure is 22.4% lower than that of a slab under the standard ISO834 fire exposure. Further, load level has a major effect on the fire resistance of RC slabs under hydrocarbon fire.
机译:本文给出了遭受严重碳氢化合物火灾的钢筋混凝土板的耐火性的数值结果。碳氢化合物燃烧曲线表示停车结构,隧道和石化设施中可能发生的火灾。建立了三维(3D)非线性有限元(FE)模型,以模拟RC平板的热机械响应,该RC平板分别结合了温度依赖性的混凝土和钢筋的热和机械性能。进行瞬态热应力分析以研究在同时施加热量和承受持续载荷的过程中,横截面温度分布及其在平板中产生的变形。将板坯和跨中挠度内的预测温度分布与已发布的实验数据进行了比较。在整个火灾持续时间内,预测的有限元分析结果与实验数据高度吻合。将经过验证的有限元模型用于参数研究,以研究在不同平板结构和碳氢化合物暴露下的RC平板的耐火性。各种参数包括火灾情况,服务负荷水平,骨料类型和混凝土覆盖层厚度。数值分析结果表明,碳氢化合物的火暴露对钢筋混凝土板的耐火性有重大影响。特别地,在碳氢化合物火暴露下的板的耐火性比在标准ISO834火暴露下的板的耐火性低22.4%。此外,负荷水平对碳氢化合物燃烧下的RC平板的耐火性有重要影响。

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