Effects of V Addition on the Deformation Mechanism and Mechanical Properties of Non-Equiatomic CoCrNi Medium-Entropy Alloys
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Published:2023-07-22
Issue:14
Volume:16
Page:5167
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ISSN:1996-1944
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Container-title:Materials
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language:en
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Short-container-title:Materials
Author:
Shen Rui1, Ni Zengyu1, Peng Siyuan1, Yan Haile1ORCID, Tian Yanzhong12ORCID
Affiliation:
1. Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education), School of Materials Science and Engineering, Northeastern University, Shenyang 110819, China 2. Research Center for Metallic Wires, Northeastern University, Shenyang 110819, China
Abstract
Equiatomic CoCrNi medium-entropy alloys exhibit superior strength and ductility. In this work, a non-equiatomic CoCrNi alloy with low stacking fault energy was designed, and different fractions of V were added to control the stacking fault energy and lattice distortion. Mechanical properties were evaluated by tensile tests, and deformation microstructures were characterized by transmission electron microscope (TEM). The main deformation mechanisms of CoCrNiV alloy with low V content are dislocation slip, stacking faults, and deformation-induced HCP phase transformation, while the dominant deformation patterns of CoCrNiV alloy with high V contents are dislocation slip and stacking faults. The yield strength increases dramatically when the V content is high, and the strain-hardening behavior changes non-monotonically with increasing the V content. V addition increases the stacking fault energy (SFE) and lattice distortion. The lower strain-hardening rate of 6V alloy than that of 2V alloy is dominated by the SFE. The higher strain-hardening rate of 10V alloy than that of 6V alloy is dominated by the lattice distortion. The effects of V addition on the SFE, lattice distortion, and strain-hardening behavior are discussed.
Funder
Fundamental Research Funds for the Central Universities
Subject
General Materials Science
Reference33 articles.
1. Effects of stacking fault energy and temperature on grain boundary strengthening, intrinsic lattice strength and deformation mechanisms in CrMnFeCoNi high-entropy alloys with different Cr/Ni ratios;Wagner;Acta Mater.,2023 2. Jabeen, N., Hussain, A., Qaiser, M.A., Ali, J., Rehman, A., Sfina, N., Ali, G.A., and Tirth, V. (2022). Enhanced Energy Storage Performance by Relaxor Highly Entropic (Ba0.2Na0.2K0.2La0.2Bi0.2)TiO3 and (Ba0.2Na0.2K0.2Mg0.2Bi0.2)TiO3 Ferroelectric Ceramics. Appl. Sci., 12. 3. Fan, R., Zhao, S., Wang, L., Wang, L., and Guo, E. (2023). Effect of Annealing Temperature on the Microstructure and Mechanical Properties of CoCrFeNiNb0.2Mo0.2 High Entropy Alloy. Materials, 16. 4. Zhang, X., Yang, D., Jia, Y., and Wang, G. (2023). Microstructure and Nanoindentation Behavior of FeCoNiAlTi High-Entropy Alloy-Reinforced 316L Stainless Steel Composite Fabricated by Selective Laser Melting. Materials, 16. 5. Wang, Y., Li, D., Yang, J., Jin, J., Zhang, M., Wang, X., Li, B., Hu, Z., and Gong, P. (2023). Effect of Grain Size on the Tribological Behavior of CoCrFeMnNi High Entropy Alloy. Materials, 16.
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