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Fiber element simulation of interaction behavior of local and global buckling in axially loaded rectangular concrete-filled steel tubular slender columns under fire exposure

机译:火灾下轴向加载矩形钢管混凝土细长柱局部屈曲与整体屈曲相互作用行为的纤维元模拟

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Slender rectangular thin-walled concrete-filled steel tubular (CFST) columns in composite building structures exposed to fire may experience the interaction of local and global buckling. Numerical investigations on the interaction buckling responses of such columns under fire exposure have been rarely reported. This paper describes a fiber-based computational model for the prediction of the fire-resistance and interaction responses of local and global buckling of concentrically-loaded slender CFST columns made of rectangular sections exposed to fire. The thermal analysis is undertaken to calculate the distribution of temperatures in the column cross-section considering the effects of the air gap between concrete and steel, exposure surface emissivity as well as moisture content in concrete. The local and post-local buckling models proposed previously for steel tube walls at elevated temperatures are incorporated in the inelastic analysis of cross-sections to model the progressive post-local buckling. The global buckling analysis of slender CFST columns exposed to fire accounts for the effects of material and geometric nonlinearities as well as local buckling. Efficient computational procedure and solution algorithms are developed to solve the nonlinear equilibrium dynamic functions of loaded slender CFST columns exposed to fire. Independent experimental and numerical results on slender CFST columns are utilized to validate the computational model. The interaction behavior of local and global buckling and fire-resistance of slender rectangular CFST columns are investigated. It is shown that the developed computational model provides a reasonably accurate and efficient method for the prediction of the interaction buckling responses as well as the fire-resistance of slender CFST columns subjected to axial loading and fire.
机译:遭受火灾的复合建筑结构中的细长矩形薄壁钢管混凝土(CFST)柱可能会遇到局部屈曲和整体屈曲的相互作用。很少有关于这种柱在火灾下的相互作用屈曲响应的数值研究的报道。本文介绍了一种基于纤维的计算模型,用于预测由矩形截面暴露于火中的同心加载细长CFST柱的局部屈曲和整体屈曲的耐火性和相互作用响应。考虑到混凝土和钢之间的气隙,暴露表面的发射率以及混凝土中的水分含量的影响,进行了热分析以计算塔截面的温度分布。先前为高温下的钢管壁提出的局部屈曲和局部屈曲模型被纳入横截面的非弹性分析中,以模拟渐进的局部屈曲。暴露于火的细长CFST柱的整体屈曲分析考虑了材料和几何非线性以及局部屈曲的影响。开发了有效的计算程序和求解算法,以解决火灾中加载的细长CFST柱的非线性平衡动力功能。细长CFST柱上的独立实验和数值结果用于验证计算模型。研究了细长矩形CFST柱的局部和整体屈曲以及耐火性的相互作用行为。结果表明,所建立的计算模型为预测细长轻质钢管混凝土柱承受轴向荷载和火灾时的相互作用屈曲响应以及耐火性提供了一种合理准确有效的方法。

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