Effect of Deformation Degree on Microstructure and Properties of Ni-Based Alloy Forgings
Abstract
:1. Introduction
2. Experimental Material and Methods
3. Results and Discussion
3.1. Effect of Deformation Degree on Microstructure of Ni-Based Alloy
3.2. Effect of Deformation Degree on Properties of Ni-Based Alloy
3.3. The Nucleation Mechanism of Recrystallized Grains in the Alloy and the Evolution of Substructure Inside the Grains
3.4. γ′ Phase Evolution in Nickel-Based Superalloys
4. Conclusions
- (1)
- The grain size of nickel-based superalloys and the particle size of the “phase” steadily shrunk as the degree of deformation increased, and the hardness gradually rose. At 80% deformation, the hardness was 14.3% greater than it was at 62% distortion.
- (2)
- Chiseling and a limited amount of cutting were the major characteristics of high-temperature erosion at 750 °C, which was mostly dependent on the impact deformation mechanism. The sample with an 80% deformation degree had a lower high-temperature erosion rate, which was decreased by 10.3% when compared to the sample with a 62% deformation degree. Furthermore, the harder the alloy was, the faster it corroded at high temperatures.
- (3)
- The method of grain recrystallization used in Ni-based alloy forgings is known as discontinuous dynamic recrystallization, and it is characterized by a high dislocation density at the recrystallized grain boundaries. As a result, the sample’s microstructure frequently had numerous substructures and twin borders. This structure effectively refined the grains and increased the grain boundary area, which increased the alloy’s functionality even more.
- (4)
- As the degree of deformation increased during the hot working of the Ni-based alloy, the particle size and dislocation spacing of the phase decreased. According to studies, the ‘phase’s critical shear stress value is high, and its particle size ranges from 40 to 100 nm, which has a favorable strengthening impact on the alloy.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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Element | C | Cr | Co | Mo | Al | Ti | Fe | Ni |
---|---|---|---|---|---|---|---|---|
Mass % | 0.035 | 19.41 | 13.22 | 4.30 | 1.35 | 2.98 | 1.00 | bal |
Scheme | Deformation Temperature (°C) | Billet Size (mm) | Finished Size (mm) | Deformation Degree (%) |
---|---|---|---|---|
1 | 1140 | ɸ45 × 110 | ɸ69 × 42 | 62 |
2 | ɸ76 × 35 | 68 | ||
3 | ɸ82 × 30 | 72 | ||
4 | ɸ92 × 23 | 80 |
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Dong, R.; Li, J.; Chen, Z.; Zhang, W.; Zhou, X. Effect of Deformation Degree on Microstructure and Properties of Ni-Based Alloy Forgings. Metals 2024, 14, 340. https://doi.org/10.3390/met14030340
Dong R, Li J, Chen Z, Zhang W, Zhou X. Effect of Deformation Degree on Microstructure and Properties of Ni-Based Alloy Forgings. Metals. 2024; 14(3):340. https://doi.org/10.3390/met14030340
Chicago/Turabian StyleDong, Ruifeng, Jian Li, Zishuai Chen, Wei Zhang, and Xing Zhou. 2024. "Effect of Deformation Degree on Microstructure and Properties of Ni-Based Alloy Forgings" Metals 14, no. 3: 340. https://doi.org/10.3390/met14030340