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首页> 外文期刊>Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing >A crystal plasticity finite element analysis of cross-grain deformation heterogeneity in equal channel angular extrusion and its implications for texture evolution
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A crystal plasticity finite element analysis of cross-grain deformation heterogeneity in equal channel angular extrusion and its implications for texture evolution

机译:等通道角挤压中晶粒变形异质性的晶体可塑性有限元分析及其对织构演化的影响

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摘要

A crystal plasticity finite element (CPFE) method was applied to evaluate cross-grain deformation heterogeneity and its implication on texture evolution during equal channel angular extrusion (ECAE) of pure copper. The simulations were conducted for one to four passes of ECAE via route C, assuming simple shear in each pass at the macroscopic level. Analyses of the stress and strain distributions reveal considerable deformation heterogeneities across individual grains in the polycrystal. The grain interactions are found to be remarkable after even-numbered passes and they partly contribute to the retained shear textures. The CPFE model captures very well the experimental textures after odd-numbered passes; however, it is not able to model the measured textures subsequent to even-numbered passes, and the results are only slightly improved as compared to a visco-plasticity self-consistent polycrystal model. These results suggest that dedicated considerations of deformation heterogeneities at both the macro- and meso-levels are necessary in modeling texture evolution during severe plastic deformation.
机译:应用晶体可塑性有限元(CPFE)方法评估纯铜的等通道角挤压(ECAE)过程中的横纹变形异质性及其对织构演变的影响。假设通过宏观水平每次通过时都进行了简单剪切,因此对通过路线C的ECAE进行了1至4次通过进行了模拟。应力和应变分布的分析表明,多晶中各个晶粒之间存在相当大的变形异质性。偶数次通过后,发现晶粒间的相互作用非常显着,并且部分地有助于保持剪切结构。 CPFE模型可以很好地捕获奇数次通过后的实验纹理。然而,它无法对偶数次通过后的纹理进行建模,与粘塑性自洽多晶模型相比,结果仅略有改善。这些结果表明,在严重塑性变形过程中对纹理演化进行建模时,必须同时考虑宏观和内观两个层面上的变形异质性。

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