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Modelling approaches for robustness assessment of multi-storey steel-composite buildings

机译:多层钢结构房屋稳健性评估的建模方法

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This paper investigates the robustness of multi-storey steel composite buildings under sudden column loss scenarios using a multi-level framework developed at Imperial College London. The framework was previously applied at its lowest level using a grillage idealisation to obtain the floor system response by assuming a linear collapse mechanism, where further simplifying assumptions were made regarding the vertical connection between the different floors. In this paper, the nonlinear dynamic response of the floor system is established from detailed nonlinear static push-down analysis at different levels of structural idealisation, accounting also for the influence of inter storey continuity. At the highest level of idealisation, a detailed composite ribbed slab model is considered to represent more accurately membrane action and load distribution at large deflections. It is shown that the triangular dominant deformation mode, previously used at the individual beam level in grillage models, can affect the robustness prediction for the floor system. However, as the allowable vertical deflection increases with the availability of sufficient ductility supply, this assumption becomes realistic compared to the actual floor system deformed configuration. Furthermore, the effect of membrane action is found to increase structural resistance to column loss by 10% in comparison with the grillage model using EC4 effective width and tributary load distribution concepts. Overall, it is found that grillage models may still provide a good balance between accuracy and computational efficiency for practical robustness assessment, subject to incorporating essential modelling features as presented in this paper.
机译:本文使用伦敦帝国理工学院开发的多层框架,研究了多层钢复合建筑在突然的柱丢失情况下的鲁棒性。该框架以前是采用格栅理想化技术在最低级别应用的,它通过采用线性塌陷机制来获得地板系统响应,其中进一步简化了有关不同地板之间垂直连接的假设。在本文中,地板结构的非线性动力响应是通过在结构理想化的不同级别上进行详细的非线性静态下推分析建立的,同时还考虑了层间连续性的影响。在理想化的最高水平上,详细的复合肋板模型被认为可以更精确地表示大挠度下的膜作用和载荷分布。结果表明,先前在格栅模型中的单个梁级别使用的三角形主导变形模式可以影响地板系统的鲁棒性预测。但是,随着允许的垂直挠度随着足够的延展性供应的增加而增加,与实际的地板系统变形构造相比,该假设变得现实。此外,与使用EC4有效宽度和支流载荷分布概念的格栅模型相比,发现膜作用的影响将结构抗柱损失的性能提高了10%。总体而言,发现格栅模型仍可在实用鲁棒性评估的准确性和计算效率之间提供良好的平衡,但要结合本文介绍的基本建模功能。

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