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Cyclic behavior modeling of reinforced concrete shear walls based on softened damage-plasticity model

机译:基于软化损伤-塑性模型的钢筋混凝土剪力墙循环行为建模

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摘要

In this paper, a rational analysis procedure is presented to model the typical cyclic behavior of reinforced concrete (RC) shear wall structures. A recently developed multi-dimensional softened damage-plasticity damage model, where the compression-softening effect of reinforced concrete is considered, is adopted to describe the concrete material behaviors. The steel material behaviors follow a modified Menegotto-Pinto model that including strain hardening, Bauschinger effect and tension stiffening. The multi-layer shell element, which is capable of simulating the coupled in-plane/out-of-plane bending as well as in-plane direct shear and the coupled bending-shear behavior of RC shear walls, is used for the finite element modeling of the structures. To overcome the convergence issues in the analysis procedure, the quasi-Newton method is adopted to solve the nonlinear finite equations and the iterative secant stiffness with plasticity offset for cyclic loading is introduced. Finally, several numerical simulations of RC shear walls with different failure modes are given, illustrating that the developed numerical model can accurately predict the cyclic behavior of RC shear wall structures.
机译:本文提出了一种合理的分析程序来模拟钢筋混凝土(RC)剪力墙结构的典型循环行为。采用最近开发的多维软化损伤-塑性损伤模型,该模型考虑了钢筋混凝土的压缩软化作用,用于描述混凝土的材料性能。钢材的行为遵循改良的Menegotto-Pinto模型,其中包括应变硬化,鲍辛格效应和张力硬化。能够模拟平面内/平面外耦合弯曲以及平面内直接剪切和RC剪力墙耦合弯曲剪切行为的多层壳单元用于有限元结构建模。为了克服分析过程中的收敛性问题,采用拟牛顿法求解非线性有限方程,并引入了具有可塑性偏移的迭代割线刚度,用于循环荷载。最后,对几种不同破坏模式的钢筋混凝土剪力墙进行了数值模拟,表明所建立的数值模型可以准确预测钢筋混凝土剪力墙结构的循环特性。

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