Relationship among Initial Texture, Deformation Mechanism, Mechanical Properties, and Texture Evolution during Uniaxial Compression of AZ31 Magnesium Alloy
Abstract
:1. Introduction
2. Materials and Methods
2.1. Sample Preparation
2.2. VPSC-PTR Model
3. Results and Discussion
4. Conclusions
- (1)
- The obvious difference in initial texture led to obvious anisotropy of the compression behavior due to the influence in the activation of the deformation mechanism. At the initial stage of deformation, the compressive yield strength of E0, with tensile twins as the dominant deformation mechanism, was slightly higher than that of E45 and E90. The activity of the pyramidal slip was high in the compression process of E90, thereby leading to high flow stress.
- (2)
- Initial texture played an important role in texture evolution during compression by influencing the priority of deformation mechanism. The large activation of the tensile twin in E0 made the {0001} basal plane deflects perpendicular to the compression direction. The activation of the basal slip of E45 and E90 caused the grain c-axis to rotate slowly parallel to the direction of application, and the initiation of the tensile twin caused the {0001} plane to slowly turn perpendicular to the ED direction. Compared with E0 and E90, E45 was more conducive to the improvement of reforming ability after pre-compression.
- (3)
- The difference in microstructure among the three samples was attributed to the number and morphology of the {10–12} tensile twins, which were mainly due to the obvious difference in initial texture.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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AC2 I | 800 mL ethanol, 100 mL propanol, 18.5 mL distilled water, 10 g hydroxyquimoline, 75 g citric acid |
AC2 II | 41.5 g sodium thiocyanate |
AC2 III | 15 mL perchloric acid |
Deformation Mode | ||||
---|---|---|---|---|
Basal <a> | 28 | 60 | 185 | 16 |
Prismatic <a> | 85 | 10 | 200 | 250 |
Pyramidal <c+a> | 110 | 15 | 120 | 400 |
Extension twin | 45 | 0 | 150 | 400 |
Compression twin | 210 | 100 | 345 | 400 |
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Su, H.; Chu, Z.; Xue, C.; Li, Y.; Ma, L. Relationship among Initial Texture, Deformation Mechanism, Mechanical Properties, and Texture Evolution during Uniaxial Compression of AZ31 Magnesium Alloy. Crystals 2020, 10, 738. https://doi.org/10.3390/cryst10090738
Su H, Chu Z, Xue C, Li Y, Ma L. Relationship among Initial Texture, Deformation Mechanism, Mechanical Properties, and Texture Evolution during Uniaxial Compression of AZ31 Magnesium Alloy. Crystals. 2020; 10(9):738. https://doi.org/10.3390/cryst10090738
Chicago/Turabian StyleSu, Hui, Zhibing Chu, Chun Xue, Yugui Li, and Lifeng Ma. 2020. "Relationship among Initial Texture, Deformation Mechanism, Mechanical Properties, and Texture Evolution during Uniaxial Compression of AZ31 Magnesium Alloy" Crystals 10, no. 9: 738. https://doi.org/10.3390/cryst10090738
APA StyleSu, H., Chu, Z., Xue, C., Li, Y., & Ma, L. (2020). Relationship among Initial Texture, Deformation Mechanism, Mechanical Properties, and Texture Evolution during Uniaxial Compression of AZ31 Magnesium Alloy. Crystals, 10(9), 738. https://doi.org/10.3390/cryst10090738