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Modeling of Microstructure Evolution in Process with Severe Plastic Deformation by Cellular Automata

机译:细胞自动机对严重塑性变形过程中微观组织演化的建模

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Prediction of microstructure evolution and properties of ultrafine-grained materials is one of the most significant, current problems in materials science. Recently, an interest to apply the cellular automata (CA) to the simulation of different phenomena in materials has been rising constantly. The main asset of the CA is the ability for accurate modeling of the microstructure. Deformation in micro-scale shows anisotropy, which is related with the different crystallographic orientation of the grains in the polycrystalline material. To improve the accuracy of modeling, CA and FEM must be combined with crystal plasticity theory. In present model, deformation in macro-scale is transferred to meso-scale, where a representative element contains several, score or hundreds grains, and then is applied in micro-scale to each grain. Strain and strain rate are decomposed into the crystallographic directions. For each crystallographic direction, development of dislocation and subgrain boundaries are considered. In each grain development of dislocation structure is distinctive because their orientation is unique. Creation of low-angle boundaries and their development into high-angle boundaries are simulated by the cellular automata on the base of calculations using finite element method and crystal plasticity theory. Some algorithms implemented into CA are described in the paper, as well as simulation results.
机译:超细晶粒材料的微观结构演变和性能的预测是材料科学中最重要的当前问题之一。近来,将元胞自动机(CA)应用于模拟材料中不同现象的兴趣不断增长。 CA的主要资产是对微观结构进行精确建模的能力。微观形变显示各向异性,这与多晶材料中晶粒的不同晶体学取向有关。为了提高建模的准确性,必须将CA和FEM与晶体可塑性理论相结合。在当前模型中,宏观尺度的变形被转移到中尺度,其中代表性的元素包含几个,刻痕或数百个晶粒,然后以微观尺度应用于每个晶粒。应变和应变率分解为晶体学方向。对于每个晶体学方向,都考虑了位错和亚晶界的发展。在每一个晶粒的发展中,位错结构是独特的,因为它们的取向是独特的。在使用有限元方法和晶体可塑性理论进行计算的基础上,通过元胞自动机模拟了低角度边界的创建以及它们向高角度边界的发展。本文介绍了在CA中实​​现的一些算法以及仿真结果。

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