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Dynamic Recrystallization of Austenite in Ni-30 Pct Fe Model Alloy: Microstructure and Texture Evolution

机译:Ni-30 Pct Fe模型合金中奥氏体的动态再结晶:组织和组织演变

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摘要

The microstructure and crystallographic texture development in an austenitic Ni-30 pct Fe model alloy was investigated within the dynamic recrystallization (DRX) regime using hot torsion testing. The prominent DRX nucleation mechanism was strain-induced grain boundary migration accompanied by the formation of large-angle sub-boundaries and annealing twins. The increase in DRX volume fraction occurred through the formation of multiple twinning chains. With increasing strain, the pre-existing Σ3 twin boundaries became gradually converted to general boundaries capable of acting as potent DRX nucleation sites. The texture characteristics of deformed grains resulted from the preferred consumption of high Taylor factor components by new recrystallized grains. Similarly, the texture of DRX grains was dominated by low Taylor factor components as a result of their lower consumption rate during the DRX process. The substructure of deformed grains was characterized by “organized,” banded subgrain arrangements, while that of the DRX grains displayed “random,” more equiaxed subgrain/cell configurations.
机译:使用热扭转试验,在动态重结晶(DRX)范围内研究了奥氏体Ni-30 pct Fe模型合金的微观结构和晶体学织构发展。 DRX的主要成核机理是应变诱导的晶界迁移,伴随着大角度亚边界和退火孪晶的形成。 DRX体积分数的增加是通过形成多个孪生链而发生的。随着应变的增加,先前存在的Σ3双晶界逐渐转变为能够充当有效DRX成核位点的一般界。变形晶粒的织构特性是由于新的重结晶晶粒优先消耗高泰勒因子成分而导致的。类似地,由于DRX颗粒在DRX过程中的消耗率较低,因此其纹理以低泰勒因子成分为主。变形晶粒的亚结构的特征是“有组织的”,带状的亚晶粒排列,而DRX晶粒的亚结构表现出“随机”,等轴的亚晶粒/晶胞构型。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2009年第5期|1175-1189|共15页
  • 作者单位

    Centre for Material and Fibre Innovation Deakin University Geelong Vic 3217 Australia;

    Centre for Material and Fibre Innovation Deakin University Geelong Vic 3217 Australia;

    Centre for Material and Fibre Innovation Deakin University Geelong Vic 3217 Australia;

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