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Behaviour of steel and steel-concrete composite beams and beam-to-column connections at elevated temperatures

机译:钢和钢混凝土组合梁的行为以及在高温下的梁到柱连接

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摘要

The current research work investigates the behaviour of steel and composite beams as well as beam-to-column connections at elevated temperatures. Significant attention is needed to identify the main issues, as the behaviour is profoundly different from that at ambient temperature. Local buckling of the beam flange outstands has been found to be highly significant in accelerating the development of catenary action in fire, since this action is reliant on hinges forming which may result from local buckling. Local buckling of the beam web, which experiences a non-uniform temperature variation, is also important because the mechanical properties of the steel are degraded non-uniformly from their ambient values. Current formulations for web buckling at ambient temperature therefore need substantial revision at elevated temperatures. Very large compressive forces are developed within the beams initially and these induce large stresses in the column web; hitherto this has not been considered. Developing a formulation representing the mechanics of this potential failure zone in the column web in the compression region of the connection is a useful and needed addition to research in the topic. Predicting the critical temperature in a connection that causes failure of the bolts, end plate and column flange in the tension zone of the connection is considered in this research work. An elastic analysis of a panel zone in a rigid or semi-rigid joint in a steel frame, which is based on simple equilibrium considerations that takes into account the shear and flexural deformations of the panel zone, is developed at elevated temperatures. In order to model the structural response of a composite beam restrained by cooler members in a steel compartment fire in a frame structure at elevated temperature, recourse is needed to a geometric nonlinear formulation, since the beam transverse deflections are not negligible and the axial compressive force in the member is also substantial at the early stages of the fire. This thesis presents such a formulation, which incorporates partial interaction between the concrete slab and steel component, as well as the degradation of the stiffnesses of the components of the composite beam prior to yield at elevated temperature.
机译:当前的研究工作是研究钢梁和复合梁以及在高温下梁到柱的连接行为。由于行为与环境温度有很大不同,因此需要特别注意以识别主要问题。已经发现,梁式法兰突出的局部屈曲在加速火灾中悬链线作用的发展方面非常重要,因为这种作用依赖于局部屈曲可能导致的铰链形成。经历不均匀温度变化的梁腹板的局部屈曲也很重要,因为钢的机械性能会因其环境值而非均匀地降低。因此,当前用于在环境温度下屈曲的幅材的配方需要在高温下进行实质性修改。最初,梁内部会产生很大的压缩力,这些压力会在柱腹板中产生很大的应力。迄今为止,尚未考虑。在该主题的研究中,开发一种表示该连接网压缩区域中柱网中此潜在故障区域力学原理的公式是有用且必要的补充。在这项研究工作中,考虑了预测导致连接处拉伸区域中的螺栓,端板和柱法兰失效的连接处的临界温度。在高温下,对钢框架中刚性或半刚性接头中的面板区域进行了弹性分析,该分析基于简单的平衡考虑,其中考虑了面板区域的剪切变形和挠曲变形。为了模拟在高温下框架结构中钢制隔舱火中受冷却构件约束的复合梁的结构响应,需要求助于几何非线性公式,因为梁的横向挠度不可忽略且轴向压缩力在火灾初期,该成员的数量也很大。本论文提出了这样一种配方,其中包括了混凝土板和钢构件之间的部分相互作用,以及在高温屈服之前复合梁构件的刚度的降低。

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