Modeling parameters for predicting the fire-induced progressive collapse in steel framed buildings

S. Venkatachari , V.K.R. Kodur
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Abstract

Fire is one of the extreme loading events that a building may experience during its service life and can have severe consequences on the safety of its occupants, first responders, and the structure. Steel framed buildings under severe fires can experience high levels of instability at a local or global level, which in turn can lead to the partial or progressive collapse of the structure. However, in current practice, fire resistance of structures is obtained without due consideration to a number of critical factors, and this is mainly due to the high level of complexity in undertaking advanced analysis of structures under fire exposure. This paper presents a parametric study on a ten-story braced steel framed building subjected to fire exposure wherein six different parameters are evaluated: fire severity, fire spread, load paths, temperature-induced creep, local instability, and analysis regime. Results from validated finite element models are utilized to evaluate the influence of the different parameters and recommend critical parameters to be incorporated in the analysis. Results show that the susceptibility of fire-induced progressive collapse significantly depends on the severity of the fire exposure scenario, including fire intensity, fire spread, and extent of burning. Also, accounting for the full effects of transient creep in fire-induced progressive collapse analysis is needed to obtain conservative failure times under severe to very intense fire exposure. Additionally, results from the parametric study infer that the sectional classification of a steel section based on local instability can alter under fire exposure and this effect is more critical in steel columns located in the higher stories of the building; a nonslender column at ambient conditions can transform to a slender section at elevated temperatures. This can induce temperature-induced local instability in the column and lead to an early onset of instability at member and structural levels.

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预测钢框架建筑火灾渐进倒塌的模型参数
火灾是建筑物在使用寿命期间可能经历的极端荷载事件之一,可能对居住者、急救人员和结构的安全产生严重后果。严重火灾下的钢框架建筑可能在局部或全球范围内经历高度不稳定,这反过来又可能导致结构的部分或渐进倒塌。然而,在目前的实践中,结构的耐火性是在没有适当考虑许多关键因素的情况下获得的,这主要是由于对火灾暴露下的结构进行高级分析的复杂性很高。本文对一栋十层支撑钢框架建筑进行了火灾暴露的参数研究,其中评估了六个不同的参数:火灾严重程度、火灾蔓延、荷载路径、温度引起的蠕变、局部不稳定和分析制度。利用经过验证的有限元模型的结果来评估不同参数的影响,并建议将关键参数纳入分析。结果表明,火灾诱发渐进式坍塌的易感性在很大程度上取决于火灾暴露场景的严重程度,包括火灾强度、火灾蔓延和燃烧程度。此外,需要考虑火灾引起的渐进式倒塌分析中瞬态蠕变的全部影响,以获得在严重到非常强烈的火灾暴露下的保守失效时间。此外,参数研究的结果推断,基于局部不稳定性的钢截面分类在火灾暴露下可能会发生变化,而这种影响在位于建筑高层的钢柱中更为关键;在环境条件下的非光滑柱在高温下可以转变为细长截面。这可能会在柱中引起温度引起的局部不稳定,并导致构件和结构层面的不稳定提前开始。
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