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Three-dimensional progressive collapse analysis of reinforced concrete frame structures subjected to sequential column removal

机译:钢筋混凝土框架结构连续移柱的三维渐进倒塌分析

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In the last decade, a great care is exercised in progressive collapse analysis of structures to avoid the catastrophic consequences of such a system-level problem. The majority of the previous research works dealt with the quantification of resisting mechanisms such as the compressive arching action using two-dimensional frameworks. The three-dimensional (3D) studies are also limited to considering the initial damage as instantaneous removal of one or simultaneous removal of multiple supporting elements. This paper studies the 3D nonlinear dynamic response of reinforced concrete structures subjected to sequential column removal scenarios. A sequential nonlinear time-history analysis algorithm alongside with a macro modeling approach is utilized to predict the dynamic redistribution of the gravity loads. The efficiency of such a numerical framework is verified through comparison of computational results with the available experimental data from a past 3D half-scale test. Good agreement is observed for the global and for the local response quantities. Furthermore, a practical strengthening technique is applied into the computational model of the structural system for artificially activating the catenary mechanism. Analysis results show that strengthening of peripheral beams with externally bonded steel plates significantly increases the rotational ductility at beam-sections and in turn, enables the damaged structure to accommodate larger deformations. Finally, the influence of the removal sequence on the 3D force redistribution mechanism is investigated. Permanent plastic deformations and maximum sectional forces of a sequential removal scenario are found to be larger on average compared with those obtained from an at-once removal scenario. It is demonstrated that the time-lag between the column removals considerably affects the 3D redistribution of gravity loads, and shall not be neglected in case of considering an extreme initial damage. (C) 2016 Elsevier Ltd. All rights reserved.
机译:在最近的十年中,在结构的逐步倒塌分析中要格外小心,以避免这种系统级问题的灾难性后果。先前的大部分研究工作都是使用二维框架来对抵抗机制(例如压缩拱起作用)进行量化。三维(3D)研究还仅限于将初始损坏视为瞬时移除一个或同时移除多个支撑元件。本文研究了钢筋混凝土结构在顺序移柱情况下的3D非线性动力响应。顺序非线性时间历史分析算法以及宏建模方法可用于预测重力载荷的动态重新分配。通过将计算结果与过去3D半比例测试的可用实验数据进行比较,可以验证这种数值框架的效率。对于全球和本地响应数量,观察到良好的一致性。此外,将实用的加固技术应用于结构系统的计算模型中,以人为激活悬链线机制。分析结果表明,使用外部粘结钢板加固外围梁可以显着提高梁截面的旋转延展性,从而使受损的结构能够适应更大的变形。最后,研究了移除顺序对3D力重新分配机制的影响。与从一次移除场景获得的塑性变形和最大截面力相比,连续移除场景的平均塑性变形和最大截面力平均更高。事实证明,拆除柱子之间的时间差会显着影响重力载荷的3D重新分布,并且在考虑极端的初始损坏的情况下不应忽略。 (C)2016 Elsevier Ltd.保留所有权利。

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