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A combined dislocation fan-finite element (DF-FE) method for stress field simulation of dislocations emerging at the free surfaces of 3D elastically anisotropic crystals

机译:一种组合脱位风扇有限元(DF-FE)方法,用于在3D的自由表面出现在3D弹性各向异性晶体中的脱位的应力场模拟

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摘要

A combined dislocation fan-finite element (DF-FE) method is presented for efficient and accurate simulation of dislocation nodal forces in 3D elastically anisotropic crystals with dislocations intersecting the free surfaces. The finite domain problem is decomposed into half-spaces with singular traction stresses, an infinite domain, and a finite domain with non-singular traction stresses. As such, the singular and non-singular parts of the traction stresses are addressed separately; the dislocation fan (DF) method is introduced to balance the singular traction stresses in the half-spaces while the finite element method (FEM) is employed to enforce the non-singular boundary conditions. The accuracy and efficiency of the DF method is demonstrated using a simple isotropic test case, by comparing it with the analytical solution as well as the FEM solution. The DF-FE method is subsequently used for calculating the dislocation nodal forces in a finite elastically anisotropic crystal, which produces dislocation nodal forces that converge rapidly with increasing mesh resolutions. In comparison, the FEM solution fails to converge, especially for nodes closer to the surfaces.
机译:提出了一种组合的脱位风扇有限元(DF-FE)方法,用于3D中的脱位节节力的高效和准确模拟,其具有与自由表面交叉的脱位的脱位。有限域问题被分解成具有奇异牵引力的半空间,无限域和具有非奇异牵引应力的有限域。因此,牵引力的单数和非奇异部分分别解决;引入位错风扇(DF)方法以平衡半空间中的奇异牵引应力,而采用有限元方法(FEM)以实施非奇异边界条件。使用简单的各向同性测试用例对DF方法的准确性和效率进行说明,通过将其与分析解决方案以及有限元解决方案进行比较。随后使用DF-Fe方法用于计算有限的弹性各向异性晶体中的位错节节力,其产生脱位核心力,其随着越来越多的网格分辨率而迅速收敛。相比之下,FEM解决方案无法收敛,特别是对于更靠近表面的节点。

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