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Effects of truss behaviour on critical temperatures of welded steel tubular truss members exposed to uniform fire

机译:桁架行为对均匀火烧钢管桁架构件临界温度的影响

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This paper presents the results of a numerical investigation into the behaviour of welded steel tubular truss at elevated temperatures. The purpose is to assess whether the current method of calculating truss member limiting temperature, based on considering each individual truss member and using the member force from ambient temperature analysis, is suitable. Finite Element (FE) simulations were carried out for Circular Hollow Section (CHS) trusses using the commercial Finite Element software ABAQUS v6.10-l. The FE simulation model had been validated against available fire test results on trusses. The simulated trusses were subjected to constant mechanical loads and then increasing temperatures until failure. The elevated temperature stress-strain curves were based on Eurocode EN-1993-1-2. Initial geometrical imperfections were included, based on the lowest buckling mode from eigenvalue analysis. The numerical parametric study examined the effects of truss type, joint type, truss span-to-depth ratio, critical member slenderness, applied load ratio, number of brace members, initial imperfection and thermal elongation on critical temperatures of the critical truss members. These critical temperatures were then compared with the member-based critical temperatures, which were numerically calculated using ABAQUS but using the member forces obtained from ambient temperature structural analysis as would be the case in the current design method. The results of the numerical parametric study indicate that due to truss undergoing large displacements at elevated temperatures, some truss members (compression brace members near the truss centre) experience large increases in member forces. Therefore, when calculating the member critical temperatures, it would not be safe to use the member forces from the ambient temperature structural analysis. Using the ambient temperature member force may overestimate the truss member critical temperature (based on truss analysis) by 100 ℃. Finally, this paper proposes and validates an analytical method to take into consideration the additional compression force due to large truss displacement. This is based on assuming a maximum truss displacement of span over 30.
机译:本文介绍了对高温下焊接钢管桁架行为的数值研究结果。目的是基于考虑每个单独的桁架构件并使用来自环境温度分析的构件力来评估当前计算桁架构件极限温度的方法是否合适。使用商业有限元软件ABAQUS v6.10-1对圆形空心截面(CHS)桁架进行了有限元(FE)模拟。有限元模拟模型已经针对桁架上的可用火测试结果进行了验证。模拟的桁架承受恒定的机械载荷,然后升高温度直至失效。高温应力-应变曲线基于欧洲规范EN-1993-1-2。基于特征值分析的最低屈曲模式,包括了最初的几何缺陷。数值参数研究检查了桁架类型,接头类型,桁架跨度比,关键构件的细长度,施加的载荷比率,支撑构件的数量,初始缺陷和热伸长对关键桁架构件的临界温度的影响。然后将这些临界温度与使用ABAQUS进行数值计算的基于构件的临界温度进行比较,但是使用从环境温度结构分析中获得的构件力(在当前设计方法中就是这种情况)。数值参数研究的结果表明,由于桁架在高温下会发生大位移,因此某些桁架构件(位于桁架中心附近的抗压支撑构件)的构件力会大大增加。因此,在计算构件临界温度时,使用来自环境温度结构分析的构件力是不安全的。使用环境温度构件力可能会使桁架构件的临界温度(基于桁架分析)高估100℃。最后,本文提出并验证了一种考虑大桁架位移引起的附加压缩力的分析方法。这是基于假设最大桁架位移跨度超过30。

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