Effect of Solution Treatment Temperature on Microstructural Evolution and Mechanical Properties of GH4698 Superalloy
Abstract
1. Introduction
2. Materials and Methods
2.1. Materials Preparation
2.2. Microstructure Examination
3. Results and Discussion
3.1. Microstructure Before Heat Treatment
3.2. Temperature Dependence of Grain Size Evolution
3.3. Effect of Solution Treatment Temperature on Precipitation Phase
3.4. Effect of Solution Treatment Temperature on the Tensile Properties
3.5. Contribution of Various Strengthening Mechanisms to YS at RT
3.6. Strength-Ductility Evolution Behavior at 700 °C
4. Conclusions
- (1)
- With increasing solution temperature, the Sellars grain growth kinetic model established based on experimental data indicates that the optimal time exponent is n = 3.4, with grain boundary migration activation energy Q = 478.7 kJ·mol−1.
- (2)
- The quantitative statistical results indicate that the γ′ phase is independent of the solution temperature. However, the reduction in total grain boundary area caused by grain coarsening led to an increase in the number of M23C6 carbides per unit grain boundary length from 0.26 μm−1 to 0.39 μm−1.
- (3)
- The tensile strength at room temperature decreases with increasing solution temperature, with the UTS dropping from 1268 MPa to 1226 MPa and the YS decreasing from 840 MPa to 807 MPa, while the elongation after fracture remains at 28–32%. At 700 °C, the UTS decreases from 974 MPa to 904 MPa, and the YS decreases from 755 MPa to 696 MPa, with the elongation maintained at approximately 6%. Quantitative analysis indicates that the reduction in strength is primarily attributed to grain coarsening.
- (4)
- At 700 °C, the deformation mechanism transitions from dislocation shearing at room temperature to stacking fault shearing, resulting in a decrease in strength. In addition, grain boundary weakening leads to a reduction in elongation to approximately 6%.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Cr | Mo | Nb | Al + Ti | B | C | Ni |
|---|---|---|---|---|---|---|
| 14.5 | 2.92 | 2.01 | ≥4 | 0.004 | 0.050 | Bal. |
| Name of Samples | Solution Treatment | Two-Stage Aging Treatment |
|---|---|---|
| ST1060 | 1060 °C × 8 h, air cooling | 1000 °C × 4 h, air cooling + 775 °C × 16 h, air cooling |
| ST1080 | 1080 °C × 8 h, air cooling | |
| ST1090 | 1090 °C × 8 h, air cooling | |
| ST1100 | 1100 °C × 8 h, air cooling | |
| ST1120 | 1120 °C × 8 h, air cooling | |
| ST1150 | 1150 °C × 8 h, air cooling |
| Temperature (°C) | Average Size (μm) | |||
|---|---|---|---|---|
| 2 h | 4 h | 6 h | 8 h | |
| 1060 | 52 (±6.56) | 63 (±6.41) | 72.4 (±4.64) | 81.6 (±8.54) |
| 1080 | 63 (±4.65) | 78 (±5.97) | 92 (±3.54) | 105 (±4.32) |
| 1090 | 74 (±3.54) | 90 (±6.74) | 101.2 (±6.58) | 110 (±8.79) |
| 1100 | 83 (±6.87) | 96.5 (±8.54) | 108.4 (±6.45) | 120 (±8.42) |
| 1120 | 96.7 (±6.45) | 123 (±6.32) | 131.8 (±8.76) | 146.3 (±10.32) |
| 1150 | 116.1 (±11.4) | 140 (±13.2) | 165 (±26.4) | 175.3 (±15.64) |
| Sample | Average Size of MC Carbide (μm) | Number Density of M23C6 Carbide (μm−1) | Volume Fraction of MC Carbide (%) | Volume Fraction of M23C6 Carbide (%) |
|---|---|---|---|---|
| ST1060 | 2.23 (±0.81) | 0.26 (±0.14) | 1.04 (±0.08) | 0.25 (±0.02) |
| ST1080 | 2.14 (±0.52) | 0.28 (±0.17) | 1.08 (±0.03) | 0.31 (±0.04) |
| ST1090 | 2.12 (±0.62) | 0.31 (±0.21) | 1.10 (±0.12) | 0.28 (±0.02) |
| ST1100 | 2.21 (±0.47) | 0.31 (±0.28) | 1.12 (±0.16) | 0.24 (±0.02) |
| ST1120 | 2.27 (±0.56) | 0.34 (±0.21) | 1.14 (±0.11) | 0.27 (±0.01) |
| ST1150 | 2.02 (±0.71) | 0.38 (±0.3) | 1.08 (±0.12) | 0.26 (±0.04) |
| Sample | Cr | Mo | Al | Ti | Nb | Ni |
|---|---|---|---|---|---|---|
| ST1060 | 17.211 | 1.642 | 3.601 | 3.229 | 1.255 | Bal. |
| ST1080 | 17.214 | 1.653 | 3.600 | 3.227 | 1.255 | Bal. |
| ST1090 | 17.216 | 1.657 | 3.601 | 3.223 | 1.255 | Bal. |
| ST1100 | 17.225 | 1.659 | 3.599 | 3.221 | 1.255 | Bal. |
| ST1120 | 17.231 | 1.662 | 3.598 | 3.216 | 1.255 | Bal. |
| ST1150 | 17.244 | 1.678 | 3.599 | 3.201 | 1.255 | Bal. |
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Yan, X.; Dong, J.; Jiang, H. Effect of Solution Treatment Temperature on Microstructural Evolution and Mechanical Properties of GH4698 Superalloy. Materials 2026, 19, 1806. https://doi.org/10.3390/ma19091806
Yan X, Dong J, Jiang H. Effect of Solution Treatment Temperature on Microstructural Evolution and Mechanical Properties of GH4698 Superalloy. Materials. 2026; 19(9):1806. https://doi.org/10.3390/ma19091806
Chicago/Turabian StyleYan, Xiaofeng, Jianxin Dong, and He Jiang. 2026. "Effect of Solution Treatment Temperature on Microstructural Evolution and Mechanical Properties of GH4698 Superalloy" Materials 19, no. 9: 1806. https://doi.org/10.3390/ma19091806
APA StyleYan, X., Dong, J., & Jiang, H. (2026). Effect of Solution Treatment Temperature on Microstructural Evolution and Mechanical Properties of GH4698 Superalloy. Materials, 19(9), 1806. https://doi.org/10.3390/ma19091806
