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A three-dimensional cyclic meso-scale numerical procedure for simulation of unreinforced masonry structures

机译:三维循环中尺度数值程序,模拟无筋砌体结构

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摘要

Three-dimensional (3D) cyclic analysis and constitutive material model are needed to better understand the behavior of unreinforced masonry (URM) buildings under earthquake excitations. So far, most of the existing constitutive material models applied to the field of masonry structures have focused on two-dimensional modeling and monotonic loading. In addition, most of the studies have used implicit dynamic procedures in the time domain. Based on the inherent features of implicit formulations for nonlinear problems, a number of iterations are required at each time step to achieve convergence, which leads to intensive computations and lack of convergence in some cases such as cyclic loadings.In this paper, a 3D cyclic constitutive material model implemented within an explicit analysis procedure is proposed, which can be used to model large deformation behavior of masonry walls. A rigorous constitutive material model is proposed and validated with available experimental data from previous researches, and for the attributes for which experimental data is not readily available; a number of new experimental tests has been conducted by the authors. The material model is implemented in a user-defined subroutine and compiled with ABAQUS (VUMAT). The subroutine is then tested by several numerical examples on a single element under cyclic normal and transverse deformations to examine the behavior of the material model. Moreover, several analyses are conducted and the numerical results are compared with experimental data to assess the robustness and predictive capabilities of the proposed material model and the numerical solution algorithms.
机译:需要三维(3D)循环分析和本构材料模型,以更好地理解地震激发下无筋砌筑(URM)建筑物的行为。迄今为止,应用于砌体结构领域的大多数现有本构材料模型都集中在二维建模和单调荷载上。此外,大多数研究都在时域中使用了隐式动态过程。基于非线性问题隐式公式的固有特征,在每个时间步都需要进行多次迭代才能实现收敛,这会导致计算量大且在某些情况下(例如循环荷载)缺乏收敛性.3D循环提出了在显式分析程序中实现的本构材料模型,该模型可用于对砌体墙的大变形行为进行建模。提出了一个严格的本构材料模型,并用先前研究中可获得的实验数据进行了验证,并针对不容易获得实验数据的属性进行了验证。作者已经进行了许多新的实验测试。材质模型在用户定义的子例程中实现,并使用ABAQUS(VUMAT)进行编译。然后,通过几个数值示例在循环法向和横向变形下在单个元素上测试该子例程,以检查材料模型的行为。此外,进行了一些分析,并将数值结果与实验数据进行比较,以评估所提出的材料模型和数值解算法的鲁棒性和预测能力。

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