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Numerical Studies on the Creep Behavior of Shear Endplate Connection Assemblies UNDER Transient Heating

机译:瞬态加热下剪切端板连接组件蠕变行为的数值研究

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Correct assessment of the steel connection performance under fire requires including the time-dependent response of steel material in the structural analysis. Failure to do so might impose critical threats on the stability and integrity of steel structures. To this aim, the objective of this study is to investigate the effect of thermal creep on the behavior of shear endplate beam-column connections subjected to transient-state fire temperatures. First, finite element models of shear endplate assemblies are developed using ABAQUS and validated against experimental work available in the literature. Parametric studies are then carried out to study the effect of key geometrical, thermal, and material parameters on the overall response of the frame assembly in fire while explicitly including creep. This includes heating and cooling rates, initial cooling temperature, column size and height, load ratio, plate thickness, and steel grade. The results show that including thermal creep causes a reduction in the induced compressive forces and an increase in the mid-span beam deflection, for about six times higher in some cases, thus earlier development of beam catenary action. It is also concluded that lower heating and cooling rates result in larger beam tying forces on the shear end plate connections, which can reach values around ten times larger than when creep is neglected. This study shows that the current practice of neglecting creep in fire analyses, especially in slow heating, may underestimate the forces that are exerted on the shear endplate connections during fire and thus leads to unsafe structural design.
机译:正确评估火灾下的钢连接性能需要在结构分析中包括钢材的时间相关响应。否则可能会严重威胁钢结构的稳定性和完整性。为此,本研究的目的是研究热蠕变对承受瞬态火灾温度的剪力端板梁柱连接行为的影响。首先,使用ABAQUS开发了剪切端板组件的有限元模型,并针对文献中的实验工作进行了验证。然后进行参数研究,以研究关键几何,热学和材料参数对框架组件在火灾中整体响应(同时明确包括蠕变)的影响。这包括加热和冷却速率,初始冷却温度,塔尺寸和高度,负载比,板厚和钢种。结果表明,包括热蠕变会导致感应压缩力的减小和中跨梁挠度的增加,在某些情况下,梁跨度的增大大约是原来的六倍,从而使梁的悬链线作用提前发展。还可以得出结论,较低的加热和冷却速率会导致剪切端板连接处的束缚力更大,该值可以达到忽略蠕变时的十倍左右。这项研究表明,在火灾分析中,特别是在缓慢加热时,忽略蠕变的当前做法可能会低估火灾期间施加在剪切端板连接上的力,从而导致不安全的结构设计。

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