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Two-dimensional analysis of anisotropic crack problems using coupled meshless and fractal finite_element method

机译:用无网格和分形有限元耦合方法对各向异性裂纹问题进行二维分析

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摘要

This paper presents a coupling technique for integrating the element-free Galerkin method (EFGM) with fractal the finite element method (FFEM) for analyzing homogeneous, anisotropic, and two dimensional linear-elastic cracked structures subjected to mixed-mode (modes I and II) loading conditions. FFEM is adopted for discretization of domain close to the crack tip and EFGM is adopted in the rest of the domain. In the transition region interface ele-ments are employed. The shape functions within interface elements which comprises both the element-free Galerkin and the finite element shape functions, satisfies the consistency condition thus ensuring convergence of the proposed coupled EFGM-FFEM. The proposed method combines the best features of EFGM and FFEM, in the sense that no structured mesh or special enriched basis functions are necessary and no post-processing (employing any path independent integrals) is needed to determine fracture parameters such as stress-intensity factors (SIFs) and T — stress. The numerical results based on all four orthotropic cases show that SIFs and T -stress obtained using the pro-posed method are in excellent agreement with the reference solutions for the structural and crack geometries considered in the present study. Also a parametric study is carried out to examine the effects of the integration order, the similarity ratio, the number of transformation terms, and the crack length to width ratio on the quality of the numerical solutions.
机译:本文提出了一种将无元素伽勒金方法(EFGM)与分形,有限元方法(FFEM)相结合的耦合技术,以分析均质,各向异性和二维线性弹性裂纹混合结构(模式I和II) )加载条件。 FFEM用于离散靠近裂纹尖端的区域,而EFGM用于其余区域。在过渡区域中,采用界面元素。既包含无元素Galerkin又包含有限元素形状函数的界面元素中的形状函数满足一致性条件,从而确保了提出的耦合EFGM-FFEM的收敛性。提出的方法结合了EFGM和FFEM的最佳功能,即不需要结构化网格或特殊的丰富基函数,并且不需要后处理(采用任何与路径无关的积分)即可确定诸如应力强度因子之类的断裂参数。 (SIF)和T-压力。基于所有四个正交异性情况的数值结果表明,使用提议的方法获得的SIF和T应力与本研究中考虑的结构和裂缝几何形状的参考解决方案非常吻合。还进行了参数研究,以检验积分阶数,相似度比,变换项的数量以及裂纹长宽比对数值解质量的影响。

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