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Experimental and numerical investigation on progressive collapse resistance of reinforced concrete beam column sub-assemblages

机译:钢筋混凝土梁柱子组合构件抗连续倒塌性能的试验与数值研究

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摘要

Based on alternate load path approach, an experimental program was conducted for investigating progressive collapse resistance of reinforced concrete (RC) beam-column sub-assemblages under a middle column removal scenario. Two one-half scaled sub-assemblages were designed with seismic and non-seismic detailing to check the effect of detailing on structural behavior. During the tests, with increasing deformation of the specimens, different structural mechanisms developed subsequently, i.e. flexural action, compressive arch action (CAA) and catenary action. Compared with conventional yielding strength (i.e. capacity of flexural action without considering the existence of beam axial forces), both CAA and catenary action can significantly enhance the structural resistance. The understandings towards these two mechanisms were illustrated at structural, sectional and fiber levels. To simulate the structural responses of the specimens with severe geometric and material nonlinearity, a component-based joint model was proposed and incorporated into macromodel-based finite element analysis in which beams were modeled with fiber elements. The joint model consisted of a series of springs to characterize bond-slip behavior under large tension. Numerical results agreed well with test results. Then the numerical model was used to conduct some parametric studies on the boundary conditions of test specimens, including the axial and the rotational restraints.
机译:基于替代的载荷路径方法,进行了一个实验程序,以研究在中柱拆除情况下钢筋混凝土(RC)梁柱子组件的渐进抗倒塌性能。设计了两个半比例子组件,分别具有地震和非地震细节,以检查细节对结构行为的影响。在测试过程中,随着试样变形的增加,随后形成了不同的结构机制,即弯曲作用,压缩拱作用(CAA)和悬链作用。与常规屈服强度(即不考虑梁轴向力存在的挠曲作用能力)相比,CAA和悬链作用均可显着提高结构阻力。在结构,截面和纤维水平上都说明了对这两种机理的理解。为了模拟具有严重几何和材料非线性的标本的结构响应,提出了基于构件的联合模型,并将其结合到基于宏模型的有限元分析中,在该有限元分析中用纤维单元对梁进行建模。关节模型由一系列弹簧组成,以表征大张力下的粘结滑动行为。数值结果与试验结果吻合良好。然后使用数值模型对试样的边界条件进行一些参数研究,包括轴向约束和旋转约束。

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