Numerical and Experimental Investigation of Orientation Deviation in Shear Band in Grain-Oriented Silicon Steel
Abstract
:1. Introduction
2. Simulation Method
2.1. VPSC Model
- (1)
- Kinematics
- (2)
- Slip rate
- (3)
- Strain hardening
2.2. Velocity Gradient Tensor of Shear Band
2.3. Calculation Scheme
3. Results
3.1. Uniaxial Deviation of {111}<112> Matrix
3.1.1. Deviation Along φ1 Axis
3.1.2. Deviation Along φ2 Axis
3.2. Biaxial Deviation of {111}<112> Matrix
3.2.1. 10° Deviation Along φ2 Axis
3.2.2. 20° Deviation Along φ2 Axis
3.3. Measurement of Shear Band Deviation
4. Discussion
4.1. Rotation Rate of Shear Band in Uniaxially Deviated Matrix
4.2. Rotation Rate of Shear Band in Biaxially Deviated Matrix
4.3. Applications and Limitations of the Model
5. Conclusion
- (1)
- In uniaxially deviated {111}<112> matrix along the φ1 (or φ2) axis, the shear band deviation in the φ1 (or φ2) axis from Goss decreases during rotation, while the deviation in the φ2 (or φ1) axis either first increases and then decreases or monotonically increases. The larger negative orientation rotation rate of the shear band in the matrix deviated along the φ2 axis results in the larger shear band deviation from Goss compared with the matrix deviated along the φ1 axis.
- (2)
- In the {111}<112> matrix deviated along both φ1 and φ2 axes, the shear band deviation along φ1 decreases throughout the rotation process, while the deviation along φ2 first decreases and then increases. The rapidly decreased rotation rate along the φ2 axis is responsible for the larger shear band deviation from Goss along the φ2 axis than the φ1 axis.
- (3)
- Compared with uniaxially deviated {111}<112> matrix, the biaxially deviated matrix can have a reduced or unchanged deviation along the φ1 axis and an increased deviation along the φ2 axis, resulting in a larger overall deviation in the shear band from Goss. This difference arises from the enhanced rotation rate along the φ1 axis and the decreased rotation rate along the φ2 axis under biaxial deviation of the matrix.
- (4)
- The simulation method used is capable of predicting the general rotation path in the shear band, and can be extended to other BCC metallic materials. However, the present simulation is based on the assumptions that a simple shear strain occurs in the shear band and the orientation rotation in the shear band is uniform. Further simulation work is needed to investigate the orientation dispersion in the shear band due to the microscopic strain heterogeneity.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Chen, S.; Zhang, F.; Sha, Y.; Chen, X.; Zuo, L. Numerical and Experimental Investigation of Orientation Deviation in Shear Band in Grain-Oriented Silicon Steel. Materials 2025, 18, 2229. https://doi.org/10.3390/ma18102229
Chen S, Zhang F, Sha Y, Chen X, Zuo L. Numerical and Experimental Investigation of Orientation Deviation in Shear Band in Grain-Oriented Silicon Steel. Materials. 2025; 18(10):2229. https://doi.org/10.3390/ma18102229
Chicago/Turabian StyleChen, Sihao, Fang Zhang, Yuhui Sha, Xi Chen, and Liang Zuo. 2025. "Numerical and Experimental Investigation of Orientation Deviation in Shear Band in Grain-Oriented Silicon Steel" Materials 18, no. 10: 2229. https://doi.org/10.3390/ma18102229
APA StyleChen, S., Zhang, F., Sha, Y., Chen, X., & Zuo, L. (2025). Numerical and Experimental Investigation of Orientation Deviation in Shear Band in Grain-Oriented Silicon Steel. Materials, 18(10), 2229. https://doi.org/10.3390/ma18102229