Investigation on Recrystallization Behavior of Cold‐Rolled Silicon Steel in Continuous Heating with Three‐Point Bending Testing

Author:

Liu Yameng12,Fang Xianshi3,Liu Kaixin12,Wang Zhilei124,Zhang Zhihao12ORCID,Liu Xinhua12

Affiliation:

1. Key Laboratory for Advanced Materials Processing University of Science and Technology Beijing Beijing 100083 China

2. Beijing Laboratory of Metallic Materials and Processing for Modern Transportation Institute for Advanced Materials and Technology University of Science and Technology Beijing Beijing 100083 China

3. Central Research Institute of Baoshan Iron & Steel Co., Ltd. Shanghai 201999 China

4. Beijing Advanced Innovation Center for Materials Genome Engineering University of Science and Technology Beijing Beijing 100083 China

Abstract

Understanding the recrystallization behavior of cold‐rolled silicon steel during continuous heating is essential for optimizing continuous annealing parameters and accurately controlling material performance. To address the limitations of isothermal annealing studies in interpreting actual continuous annealing processes, this study investigates the recrystallization kinetics of Fe–2.3 wt%Si steel using a continuous heating three‐point bending method. The method effectively determines the characteristic recrystallization temperatures. Interestingly, these recrystallization characteristic temperatures remain unaffected by the initial load but shift toward higher temperatures with increasing heating rates in the range of 5–15 °C min−1. The average activation energy of recrystallization is estimated to be 144.5 kJ mol−1, comparable to the value of 147.0 kJ mol−1 obtained from the isothermal process through microhardness measurement. The recrystallization kinetics, described by an extended version of the Ozawa–Flynn–Wall model, exhibits excellent agreement with experimental evaluations. By combining the present processing technologies with continuous heating recrystallization kinetics, different recrystallization temperatures and times can be determined, offering valuable insights for optimizing annealing processes.

Publisher

Wiley

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