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Numerical modelling of load bearing light gauge steel frame wall systems exposed to realistic design fires

机译:承受现实设计火灾的轻型钢框架墙承重系统的数值模拟

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摘要

Fire safety has become an important part in structural design due to the ever increasing loss of properties and lives during fires. Conventionally the fire rating of load bearing wall systems made of Light gauge Steel Frames (LSF) is determined using fire tests based on the standard time-temperature curve in ISO834 [1]. However, modern commercial and residential buildings make use of thermoplastic materials, which mean considerably high fuel loads. Hence a detailed fire research study into the fire performance of LSF walls was undertaken using realistic design fire curves developed based on Eurocode parametric [2] and Barnett’s BFD [3] curves using both full scale fire tests and numerical studies. It included LSF walls without cavity insulation, and the recently developed externally insulated composite panel system. This paper presents the details of finite element models developed to simulate the full scale fire tests of LSF wall panels under realistic design fires. Finite element models of LSF walls exposed to realistic design fires were developed, and analysed under both transient and steady state fire conditions using the measured stud time-temperature curves. Transient state analyses were performed to simulate fire test conditions while steady state analyses were performed to obtain the load ratio versus time and failure temperature curves of LSF walls. Details of the developed finite element models and the results including the axial deformation and lateral deflection versus time curves, and the stud failure modes and times are presented in this paper. Comparison with fire test results demonstrate the ability of developed finite element models to predict the performance and fire resistance ratings of LSF walls under realistic design fires.
机译:由于火灾期间财产和生命损失的不断增加,消防安全已成为结构设计的重要组成部分。常规上,由轻型钢框架(LSF)制成的承重墙系统的耐火等级是根据ISO834 [1]中的标准时间-温度曲线使用耐火试验确定的。然而,现代的商业和住宅建筑使用热塑性材料,这意味着相当高的燃料负荷。因此,我们采用了基于Eurocode参数[2]和Barnett的BFD [3]曲线开发的逼真的设计防火曲线,对LSF墙的防火性能进行了详细的防火研究,并使用了全面的防火测试和数值研究。它包括没有空腔绝缘的LSF墙,以及最近开发的外部绝缘复合板系统。本文介绍了为模拟实际设计火灾下LSF墙板的全面火灾测试而开发的有限元模型的详细信息。开发了暴露于实际设计火灾的LSF墙的有限元模型,并使用测得的柱头时间-温度曲线在瞬态和稳态火灾条件下进行了分析。进行了瞬态分析以模拟火灾测试条件,同时进行了稳态分析以获取LSF墙的载荷比-时间和破坏温度曲线。本文介绍了已开发的有限元模型的详细信息以及结果,包括轴向变形和横向变形与时间的关系曲线,以及栓钉的破坏模式和时间。与耐火测试结果的比较表明,开发的有限元模型能够预测实际设计火灾下LSF墙的性能和耐火等级。

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