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Crystal plasticity FE simulation for kink band formation in Mg-based LPSO phase using dislocation-based higher-order stress model

机译:基于错位的高阶应力模型,基于MG基LPSO相的Kink带形成的晶体塑性Fe模拟

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摘要

The dislocation-based crystal plasticity model considering higher-order stress has been constructed and a finite element (FE) analysis is conducted for both a single crystal and polycrystal with a long-period stacking ordered (LPSO) phase on the basis of the obtained model. The mesh dependence of the kink band formation is discussed from the viewpoints of the strain gradient, size effect and higher-order boundary condition. Then, it is shown that the mesh dependence of kink deformation in the FE analysis can be removed even when the scale ratio is relatively small. The width of the kink band is determined by the intrinsic length scale. When the kink band occurs in the entire specimen, work hardening can be reproduced by appropriately defining the boundary conditions for slip. The effect of the micro-scale ratio on the kink deformation is small. The disclination quadrupole structure in the kink band can be expressed qualitatively by using the incompatibility of crystal slip. Moreover, it is shown the back stress behaves as the resistance to the slip deformation in a polycrystal consisting of LPSO phases in shape of rectangular strip.
机译:考虑高阶应力的基于脱位的晶体塑性模型已经构建,并且在所获得的模型的基础上,为单晶和多晶的单晶和多晶进行有限元(Fe)分析。基于所获得的模型,具有长期堆叠(LPSO)相位。从应变梯度,尺寸效应和高阶边界条件的观点来讨论扭结频带形成的网状依赖性。然后,表明,即使在比例比相对较小的情况下,也可以去除Fe分析中的扭结变形的网眼依赖性。扭结频带的宽度由内在长度尺度确定。当扭结带发生在整个样本中时,可以通过适当地定义滑动的边界条件来再现工作硬化。微观比率对扭结变形的影响很小。通过使用晶体滑动的不相容性,可以定性地表达扭结带中的公开四极结构。此外,示出了背部应力表现为对由矩形条带形状的LPSO相的多晶中的抗滑变形的抵抗力。

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