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Parameters Influencing Collapse Resistance of Building Structures Subjected to Fire Loading

机译:影响火灾荷载作用下建筑结构抗倒塌性能的参数

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This paper focuses on the fire behavior and collapse resistance of mid-rise steel buildings with composite floor systems. Two 10 story steel buildings with different structural configurations: (i) lateral load resisting system on the perimeter, and (ii) lateral load resisting system on the interior are designed (for structural design and fire protection) according to American design practices. Finite Element (FE) based numerical techniques were used to model and simulate the behavior of these buildings in fire conditions. The fire conditions are simulated by assigning structural components the temperature values corresponding to the design fire event. The numerical technique involved macro level spring models for the connections. These connections were capable of modeling temperature dependent coupled multi-axial force-displacement response along with a coupled failure criterion. Beam elements and a combination of beam and shell elements are used for modeling columns, and composite slab systems, respectively. Explicit dynamic analysis technique is employed to simulate the structural response. According to the simulation results, gravity columns are the most important components for overall structural stability in fire conditions. If all the structural components were protected for equal FRR value, gravity columns were found to be the first to fail. If the columns were sufficiently protected, further heating causes failure of the connections at the discontinuous end of gravity beams in flexure where the gravity beam had reached its combined (positive moment capacity at the mid span plus negative moment capacity of the shear connections at the ends) flexural capacity. It was also observed that by using stronger connections, this type of failure could be delayed or avoided. If the connections survive the heating mode, there is a risk of connection failure in the cooling phase too. This risk is higher for interior connections. In the cooling phase, as the beams start to shrink, there is a tension demand on connections. It was analytically tested that by increasing the ductility of the connection, this type of failure can be delayed or avoided.
机译:本文着重于具有复合地板系统的中层钢结构建筑物的防火性能和抗倒塌性能。两座10层高的钢结构结构不同的建筑物:(i)外围的侧向抗压系统,以及(ii)内部的侧向抗压系统(根据结构设计和防火要求)根据美国设计惯例进行了设计。基于有限元(FE)的数值技术用于对这些建筑物在火灾情况下的行为进行建模和仿真。通过为结构组件分配与设计火灾相对应的温度值来模拟火灾情况。数值技术涉及用于连接的宏观弹簧模型。这些连接能够对温度相关的耦合多轴力-位移响应以及耦合破坏准则进行建模。梁单元以及梁和壳单元的组合分别用于建模柱和复合板系统。采用显式动力分析技术来模拟结构响应。根据模拟结果,重力柱是火灾条件下整体结构稳定性最重要的组成部分。如果所有结构部件都得到了相等的FRR值保护,那么重力柱将首先失效。如果对柱子进行了充分的保护,则进一步加热会导致重力梁不连续的弯曲处的连接处失效,此时重力梁已达到其组合位置(中跨处的正弯矩承载力加上端部抗剪弯矩承载力的负弯矩承载力) )抗弯能力。还观察到,通过使用更牢固的连接,可以延迟或避免这种类型的故障。如果连接在加热模式下仍然有效,则在冷却阶段也存在连接失败的风险。内部连接的风险较高。在冷却阶段,由于梁开始收缩,因此对连接有张力要求。经过分析测试,通过提高连接的延展性,可以延迟或避免这种类型的故障。

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