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Investigation of Time-Dependent Buckling of Steel Columns Exposed to Fire Temperatures

机译:火灾温度下钢柱的时变屈曲研究

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One of the critical factors affecting the strength of steel columns at elevated temperatures is the influence of material creep. Under fire conditions, steel columns can exhibit creep buckling, a phenomenon in which the critical buckling load for a column depends not only on slenderness and temperature, but also on the duration of applied load. The phenomenon of time-dependent buckling can have a significant impact on the safety of steel columns subjected to fire. This phenomenon has received relatively little research attention, and is not currently explicitly considered in code-based design formulas for columns at elevated temperatures, such as those in the Eurocode 3 or those in the AISC Specification. This paper presents some results of on-going research, which aims at developing analytical, computational and experimental predictions of the phenomenon of creep buckling in steel columns subjected to fire. Analytical solutions using the concept of time-dependent tangent modulus are developed to model time-dependent buckling behavior of steel columns at elevated temperatures. Results from computational creep buckling studies using Abaqus are also presented, and compared with analytical predictions. Material creep data on ASTM A992 steel is also presented in the paper and compared to existing creep models for structural steel at high temperatures. Both analytical and computational methods utilize material creep models for structural steel developed by Harmathy, by Fields and Fields, and by the authors. Predictions from this study are also compared against those from Eurocode 3 and the AISC Specification. Results of this work show that neglecting creep effects can lead to erroneous and potentially unsafe predictions of the strength of steel columns subjected to fire.
机译:影响高温下钢柱强度的关键因素之一是材料蠕变的影响。在火灾情况下,钢柱会出现蠕变屈曲,这种现象中,钢柱的临界屈曲载荷不仅取决于细长度和温度,还取决于施加载荷的持续时间。与时间有关的屈曲现象可能会对遭受火灾的钢柱的安全性产生重大影响。这种现象很少受到研究关注,并且目前在高温的色谱柱的基于代码的设计公式中并未得到明确考虑,例如Eurocode 3或AISC规范中的那些。本文介绍了一些正在进行的研究结果,旨在发展对遭受火灾的钢柱的蠕变屈曲现象的分析,计算和实验预测。开发了使用时变切线模量概念的解析解,以模拟高温下钢柱的时变屈曲行为。还介绍了使用Abaqus进行的计算蠕变屈曲研究的结果,并将其与分析预测进行了比较。本文还介绍了ASTM A992钢的材料蠕变数据,并将其与高温下结构钢的现有蠕变模型进行了比较。分析和计算方法都利用Harmathy,Fields和Fields及其作者开发的结构钢的材料蠕变模型。还将这项研究的预测与欧洲规范3和AISC规范的预测进行了比较。这项工作的结果表明,忽略蠕变效应会导致对遭受火灾的钢柱强度的错误且可能不安全的预测。

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