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Numerical analysis of axially loaded rectangular concrete-filled steel tubular short columns at elevated temperatures

机译:高温下轴心矩形钢管混凝土短柱的数值分析

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Elevated temperatures significantly reduce the local buckling strengths of steel tubes and the ultimate strengths of rectangular concrete-filled steel tubular (CFST) columns exposed to fire. No fiber-based models have been developed that include local buckling effects on the fire-resistance of rectangular CFST columns. This paper presents a new fiber element model for the fire-resistance predictions of axially loaded rectangular CFST short columns at elevated temperatures considering local buckling. The thermal analysis problem of a CFST column is solved by the finite difference method to determine the temperature distribution within its cross-section including an air gap, concrete moisture content and the emissivity of exposure surfaces. The nonlinear stress analysis of axially loaded short CFST columns under fire recognizes the stress-strain behavior of concrete and steel at elevated temperatures. The expressions for initial local buckling and effective widths of steel plates are incorporated in the computational model to include the effects of local and post-local buckling on the fire responses of CFST columns. The existing experimental and numerical results are utilized to examine the accuracy of the fiber-based model. The fiber model developed is used to undertake parametric studies on the effects of local buckling, geometric and material properties and loading ratio on the thermal and structural responses of CFST short columns and the load distribution in steel tube and concrete. The numerical model proposed is demonstrated to simulate well the fire and structural performance of axially loaded CFST short columns under fire. Moreover, computational solutions presented provide a better understanding of the thermal and structural responses of CFST columns in fire.
机译:升高的温度会显着降低钢管的局部屈曲强度以及暴露于火中的矩形矩形钢管混凝土(CFST)柱的极限强度。还没有开发出基于纤维的模型,该模型包括对矩形CFST柱的耐火性的局部屈曲影响。本文提出了一种新的纤维单元模型,用于考虑局部屈曲的高温下轴向加载矩形CFST短柱的耐火性预测。 CFST柱的热分析问题通过有限差分法解决,可以确定其横截面内的温度分布,包括气隙,混凝土含水量和暴露面的发射率。火灾下轴向加载的短CFST短柱的非线性应力分析可以识别高温下混凝土和钢的应力应变行为。计算模型中包含了钢板的初始局部屈曲和有效宽度的表达式,以包括局部屈曲和局部局部屈曲对CFST柱火灾响应的影响。现有的实验和数值结果被用来检验基于纤维的模型的准确性。所开发的纤维模型用于进行参数研究,研究局部屈曲,几何和材料特性以及载荷比对CFST短柱的热和结构响应以及钢管和混凝土中载荷分布的影响。所提出的数值模型可以很好地模拟火灾下轴向加载的CFST短柱的火灾和结构性能。此外,提出的计算解决方案可以更好地了解CFST柱在火灾中的热响应和结构响应。

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