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首页> 外文期刊>Key Engineering Materials >Simulation of Deformation Behavior in Aluminum Alloys Having Bimodal Structures Based on the Theory of Crystal Plasticity Considering Dislocation Distributions
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Simulation of Deformation Behavior in Aluminum Alloys Having Bimodal Structures Based on the Theory of Crystal Plasticity Considering Dislocation Distributions

机译:基于位错分布的晶体塑性理论的双峰铝合金变形行为模拟

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The present paper describes the FEM code the present authors have developed based on the theory of the polycrystal plasticity with dislocation distributions taken into account and the simulations of tensile deformation behavior in FCC polycrystalline materials having bimodal structures by using the developed FEM code. In order to simulate the deformation behavior of materials having bimodal structures, it is necessary for the code to simulate the mesoscopic deformation behavior with the size effect of the initial yield strength, or the 0.2% proof strength. The present study has attempted to simulate the size effect of 0.2% proof strength by modifying the Bailey-Hirsch relation. By using the modified relation, the size effect of the initial plastic yield is successfully reproduced by FE polycrystal plasticity analysis. The results also showed that the 0.2% yield strength is decreased as the volume fraction of coarse grains is increased in the bimodal structure. As the ratio of the average diameter of fine grains to that of coarse grains is increased, the yield strength of the bimodal structure is decreased. The yield strength and work hardening rate of the bimodal structure, however, is not so much decreased as that of fine grain models. It was also revealed that the reason why materials having bimodal structures show higher ductility is that coarse grains yield in earlier stage of deformation and lower the maximum stress in the materials.
机译:本文介绍了作者在考虑了位错分布的多晶塑性理论的基础上开发的FEM代码,并使用开发的FEM代码对具有双峰结构的FCC多晶材料的拉伸变形行为进行了仿真。为了模拟具有双峰结构的材料的变形行为,代码必须模拟具有初始屈服强度或0.2%屈服强度的尺寸效应的介观变形行为。本研究试图通过修改Bailey-Hirsch关系来模拟0.2%屈服强度的尺寸效应。通过使用修改的关系,通过FE多晶可塑性分析成功地再现了初始塑性收率的尺寸效应。结果还表明,在双峰结构中,随着粗晶粒体积分数的增加,0.2%的屈服强度降低。随着细晶粒的平均直径与粗晶粒的平均直径的比率增加,双峰结构的屈服强度降低。但是,双峰结构的屈服强度和加工硬化率并没有像细晶粒模型那样降低太多。还揭示出具有双峰结构的材料显示出较高的延展性的原因是在变形的早期阶段粗大的晶粒屈服并且降低了材料中的最大应力。

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