Evolutions of Cube ({001}<100>) and {115}<161> Orientations in Cold-Rolled Ultra-Thin Non-Oriented Silicon Steel
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Materials and Characterization Methods
2.2. CPFEM and Model Establishment
3. Results and Discussion
3.1. Microstructure Evolutions of Different Cold Rolling Reductions
3.2. Evolutions of Cube and {115}<161> Orientations during Cold Rolling
3.3. Simulation of Cold Rolling Behaviors of Cube and {115}<161> Orientations
3.3.1. Cumulative Slip Distributions, Orientation Evolutions, and the Distributions of Different Slip System Activation of Cube Orientations with Different Cold Rolling Reductions
3.3.2. Cumulative Slip Distributions and Evolutions of {115}<161> Orientations of Different Cold Rolling Reductions
4. Conclusions
- (1)
- The CPFEM is used to simulate the evolutions of Cube and {115}<161> orientations under different cold rolling reductions. The cumulative slip distributions, slip distributions of different slip systems, rotations of grain orientations, and grain deviation angles within the grains of different orientations on mesoscopic scales were calculated. Through the CPFEM, the mechanism of the influence of the cold rolling process on the micro-deformation of the grains in the ultra-thin non-oriented silicon steel was obtained, which provides some theoretical guidance for the optimization of the ultra-thin strip rolling process and the exploration of the deformation mechanism in the deformation process of the rolling.
- (2)
- Cube orientations in the initial material with less than 10° deviation from the ideal Cube orientation are still less than 15° deviation from the ideal Cube orientation even after 60% cold rolling deformation. The smaller the grain size is, the more uniform the cumulative slip distributions are within the grain, and the smaller the degrees of orientation dispersion inside the grain are. When the initial orientations do not deviate from the ideal Cube orientation by more than 12°, and the cold rolling reduction reaches 60%, the angles of deviation from the ideal Cube orientation in the grain center region are still less than 15°, indicating that the Cube orientations have a certain degree of stability in cold rolling deformation, but near the grain boundaries, due to the large number of activated slip systems and the large degree of slip, statistically stored dislocations are generated, and the grain orientations are prone to deviate from the ideal Cube orientation by more than 15°.
- (3)
- The grain with {115}<161> orientations deviating from the ideal Cube orientation by ~18° is “separated” into some different orientation regions during the cold rolling process, and some orientations of these regions are gradually oriented close to the ideal Cube orientation during the cold rolling process. When the cold rolling reduction reaches 40%, the orientations of some regions are shifted to ~12.5° from the ideal Cube orientation, which is still separated from the orientation micro-regions whose orientations deviate more than 12.5° with the increase in cold rolling reductions. There are still Cube orientation regions with an ideal Cube orientation of <15° inside the grain at 60% deformation.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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{110}<111> | {112}<111> | ||||
---|---|---|---|---|---|
No. | Slip Plane | Slip Direction | No. | Slip Plane | Slip Direction |
a01 | (011) | [1] | b01 | (112) | [] |
a02 | (011) | [] | b02 | (12) | [1] |
a03 | (101) | [11] | b03 | (2) | [11] |
a04 | (101) | [] | b04 | () | [111] |
a05 | (110) | [11] | b05 | (121) | [1] |
a06 | (110) | [1] | b06 | (21) | [] |
a07 | (1) | [111] | b07 | (1) | [111] |
a08 | (1) | [11] | b08 | () | [11] |
a09 | () | [111] | b09 | (211) | [11] |
a10 | () | [1] | b10 | (11) | [111] |
a11 | (10) | [111] | b11 | (1) | [] |
a12 | (10) | [] | b12 | () | [1] |
C11/GPa | C12/GPa | C44/GPa | n | /s−1 | /MPa | /MPa | /MPa | |
---|---|---|---|---|---|---|---|---|
226 | 140 | 116 | 20 | 0.001 | 240 | 1200 | 268 | 1 (1.4) |
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Tu, Y.; Meng, L.; Zhang, N.; Xu, J. Evolutions of Cube ({001}<100>) and {115}<161> Orientations in Cold-Rolled Ultra-Thin Non-Oriented Silicon Steel. Materials 2023, 16, 6735. https://doi.org/10.3390/ma16206735
Tu Y, Meng L, Zhang N, Xu J. Evolutions of Cube ({001}<100>) and {115}<161> Orientations in Cold-Rolled Ultra-Thin Non-Oriented Silicon Steel. Materials. 2023; 16(20):6735. https://doi.org/10.3390/ma16206735
Chicago/Turabian StyleTu, Yang, Li Meng, Ning Zhang, and Jiangjie Xu. 2023. "Evolutions of Cube ({001}<100>) and {115}<161> Orientations in Cold-Rolled Ultra-Thin Non-Oriented Silicon Steel" Materials 16, no. 20: 6735. https://doi.org/10.3390/ma16206735
APA StyleTu, Y., Meng, L., Zhang, N., & Xu, J. (2023). Evolutions of Cube ({001}<100>) and {115}<161> Orientations in Cold-Rolled Ultra-Thin Non-Oriented Silicon Steel. Materials, 16(20), 6735. https://doi.org/10.3390/ma16206735