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Numerical evaluations of a novel membrane element in simulations of reinforced concrete shear walls

机译:新型膜单元在钢筋混凝土剪力墙模拟中的数值评估

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Numerical simulation of reinforced concrete (RC) shear walls is a challenging task, due to the intricate underlying mechanics and the difficulty in balancing computational cost and accuracy. In the previous work, a general-purpose four-node quadrilateral drilling element named as GCMQ has been developed by the authors. This new element performs well with coarse meshes and provides engineers an option to efficiently simulate planar problems, such as shear walls subjected to in-plane loadings. Meanwhile, GCMQ can recover nonlinear distribution of stress field so that section resultant forces can be explicitly integrated. In this paper, GCMQ is validated via numerical simulations of several RC shear wall specimens with different reinforcement schemes and geometries. Compared to experimental results, numerical models show that GCMQ can accurately simulate in-plane response such as pushover backbones with a relatively low cost for both short and slender walls. With proper material models, it is also possible to recover other quantities such as damage distribution patterns. Since GCMQ is essentially a microscopic finite element, convergence is guaranteed, local response can also be obtained with mesh refinement. GCMQ could be used as a good tool for future modelling of shear walls and similar structures.
机译:钢筋混凝土(RC)剪力墙的数值模拟是一项艰巨的任务,因为其复杂的基础力学以及难以平衡计算成本和准确性的问题。在先前的工作中,作者开发了一种通用的四节点四边形钻削元件,名为GCMQ。这个新元素在粗糙的网格上表现良好,并为工程师提供了一个选项,可以有效地模拟平面问题,例如承受面内载荷的剪力墙。同时,GCMQ可以恢复应力场的非线性分布,从而可以清晰地整合截面合力。在本文中,通过对具有不同加固方案和几何形状的几个RC剪力墙试样进行数值模拟,对GCMQ进行了验证。与实验结果相比,数值模型表明,GCMQ可以准确模拟短壁和细长壁的面内响应,例如下垂骨干,且成本相对较低。使用适当的材料模型,还可以恢复其他数量,例如损坏分布图。由于GCMQ本质上是微观有限元,因此可以保证收敛性,还可以通过网格细化获得局部响应。 GCMQ可以用作将来对剪力墙和类似结构建模的好工具。

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