Comparison on Hysteresis Loops and Dislocation Configurations in Fatigued Face-Centered Cubic Single Crystals
Abstract
:1. Introduction
2. Experimental Procedures
3. Results and Discussion
3.1. Comparison on Hysteresis Loops of FCC Single Crystals with Various Orientations
3.2. Comparison between Dislocation Configurations: Patch vs. Vein and Ladder vs. Wall
3.3. Comparison between Wall Structures: Line Wall vs. Point Wall
3.4. Relationship between Dislocation Configurations: Vein vs. Wall and Labyrinth vs. Cell
4. Conclusions
- The hysteresis loops of and Cu single crystals exhibit obvious cyclic hardening, while the hysteresis loops of and Cu single crystals show cyclic saturation. Additionally, the Bauschinger effect of Cu single crystals also exhibits orientation dependence.
- Dislocation ladder and wall structure, as well as patch and vein structure, belong to their respective observation planes, and , which correspond to point defects and line defects of dislocations, respectively.
- The wall structures on the and planes are derived from the evolution of different dislocation configurations. This is because DBII, composed of wall structures, is prone to occur in -oriented crystals. Due to having the largest angle between and in the stereographic triangles, only DBII with a habit plane can obtain the maximum nucleation driving force.
- The change in dislocation density between the vein and the wall indicates that the wall structure is the result of the evolution of the veins, with dislocation-intensive areas becoming further compressed. The formation of labyrinth and cell structures implies the activation of different slip systems. In summary, the dislocation configuration is a three-dimensional structure, with each section observed on different planes representing only a part of the whole structure.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
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Xing, Z.; Kong, L.; Pang, L.; Liu, X.; Ma, K.; Wu, W.; Li, P. Comparison on Hysteresis Loops and Dislocation Configurations in Fatigued Face-Centered Cubic Single Crystals. Metals 2024, 14, 1023. https://doi.org/10.3390/met14091023
Xing Z, Kong L, Pang L, Liu X, Ma K, Wu W, Li P. Comparison on Hysteresis Loops and Dislocation Configurations in Fatigued Face-Centered Cubic Single Crystals. Metals. 2024; 14(9):1023. https://doi.org/10.3390/met14091023
Chicago/Turabian StyleXing, Zhibin, Lingwei Kong, Lei Pang, Xu Liu, Kunyang Ma, Wenbo Wu, and Peng Li. 2024. "Comparison on Hysteresis Loops and Dislocation Configurations in Fatigued Face-Centered Cubic Single Crystals" Metals 14, no. 9: 1023. https://doi.org/10.3390/met14091023
APA StyleXing, Z., Kong, L., Pang, L., Liu, X., Ma, K., Wu, W., & Li, P. (2024). Comparison on Hysteresis Loops and Dislocation Configurations in Fatigued Face-Centered Cubic Single Crystals. Metals, 14(9), 1023. https://doi.org/10.3390/met14091023