Kinetics of Secondary Recrystallization in Grain-Oriented Silicon Steel Based on Grain Size Distribution

Quasi in situ observations of the early stage of secondary recrystallization in Fe-3.25 wt.% Si high-permeability grain-oriented silicon steel indicate that large matrix grains locally impede the migration of secondary recrystallized grain boundaries. A critical grain-size criterion for identifying potential pinning grains is proposed, and a kinetic model incorporating the matrix grain-size distribution is developed. For the abnormal grain tracked at 1000 °C, the measured grain-size increment over 100 s was approximately 60 μm; the proposed pinning model predicted 47 μm, whereas the weighted-average model predicted 171 μm. Model calculations further suggest that matrix grain-size dispersion, pinning force, grain size, and relative grain-boundary energy jointly affect the early-stage growth of Goss grains. These results provide a framework for interpreting early secondary-recrystallization kinetics, while broader experimental validation is still required before the predicted parameter combinations can be used for process control.

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Publication Details

Journal
Metals
Published
2026-09-04
DOI
https://doi.org/10.3390/met16090986
Primary Topic
Magnetic Properties and Applications
Type
article
Field-Weighted Citation Impact
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article

Kinetics of Secondary Recrystallization in Grain-Oriented Silicon Steel Based on Grain Size Distribution

Zhanyi Xu, Yan Xie, Fang Zhang, Hanzheng Zhang et al.
Metals
Magnetic Properties and Applications
article

Kinetics of Secondary Recrystallization in Grain-Oriented Silicon Steel Based on Grain Size Distribution

Zhanyi Xu, Yan Xie, Fang Zhang, Hanzheng Zhang, Yuhui Sha
article en

Abstract

Quasi in situ observations of the early stage of secondary recrystallization in Fe-3.25 wt.% Si high-permeability grain-oriented silicon steel indicate that large matrix grains locally impede the migration of secondary recrystallized grain boundaries. A critical grain-size criterion for identifying potential pinning grains is proposed, and a kinetic model incorporating the matrix grain-size distribution is developed. For the abnormal grain tracked at 1000 °C, the measured grain-size increment over 100 s was approximately 60 μm; the proposed pinning model predicted 47 μm, whereas the weighted-average model predicted 171 μm. Model calculations further suggest that matrix grain-size dispersion, pinning force, grain size, and relative grain-boundary energy jointly affect the early-stage growth of Goss grains. These results provide a framework for interpreting early secondary-recrystallization kinetics, while broader experimental validation is still required before the predicted parameter combinations can be used for process control.

MetalsVol. 16(9)
Hangzhou Dianzi University (CN), Northeastern University (CN)
National Natural Science Foundation of China
Openalex Percentile: Top 28%
Magnetic Properties and Applications
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Kinetics of Secondary Recrystallization in Grain-Oriented Silicon Steel Based on Grain Size Distribution — Zhanyi Xu, Yan Xie, et al. · Metals (2026) | TGRS Research Map | TGRS