用晶体塑性有限元法模拟中钢冷轧过程织构发展

Hejie Li , Jingtao Han , Huachun Pi , Zhengyi Jiang , Dongbin Wei , A. Kiet Tieu
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引用次数: 6

摘要

在考虑体心立方(BCC)金属滑移变形机理和各种滑移系统的基础上,基于速率相关晶体本构方程,将泰勒型多晶模型和有限元多晶模型嵌入商用有限元程序ABAQUS中,实现晶体塑性有限元建模。将电子背散射衍射(EBSD)测量的初始取向直接输入到晶体塑性有限元模型中,模拟了无间隙钢(IF钢)在不同压下下的轧制织构发展。模拟结果与实验结果吻合较好。随着压下量的增加,预测织构和实验织构都趋于尖锐,taylor模型模拟的结果比有限元模型模拟的结果更强。结果表明,48{110}< 111 > +{112}< 111 > +{123}< 111 >滑移体系计算的滚动纹理更接近于EBSD结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Modeling texture development during cold rolling of IF steel by crystal plasticity finite element method

With the consideration of slip deformation mechanism and various slip systems of body centered cubic (BCC) metals, Taylor-type and finite element polycrystal models were embedded into the commercial finite element code ABAQUS to realize crystal plasticity finite element modeling, based on the rate dependent crystal constitutive equations. Initial orientations measured by electron backscatter diffraction (EBSD) were directly input into the crystal plasticity finite element model to simulate the development of rolling texture of interstitial-free steel (IF steel) at various reductions. The modeled results show a good agreement with the experimental results. With increasing reduction, the predicted and experimental rolling textures tend to sharper, and the results simulated by the Taylor-type model are stronger than those simulated by finite element model. Conclusions are obtained that rolling textures calculated with 48 {110}〈111〉+{112}〈111〉+{123}〈111〉 slip systems are more approximate to EBSD results.

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