Preparation of Spherical δ-Nb3Al Powders and Their Phase Transition Behavior in Powder Metallurgy Nickel-Based Superalloys During Hot Isostatic Pressing
Abstract
1. Introduction
2. Experimental Procedures
2.1. Preparation of Spherical δ-Nb3Al Powders
2.2. Fabrication of δ-Nb3Al-Reinforced Powder Metallurgy Nickel-Based Superalloy
2.3. Microstructural and Phase Characterization
3. Results and Discussion
3.1. Particle-Rounding Behavior of δ-Nb3Al Particles During Ball Milling
3.2. Phase Constitution of Spherical δ-Nb3Al-Reinforced Alloy After HIP
3.3. Interfacial Microstructure and Phase Formation Sequence
4. Conclusions
- (1)
- Irregular δ-Nb3Al particles can be effectively transformed into near-spherical particles by controlled ball milling under the optimized condition of 200 r/min for 20 h. The particle-rounding process proceeds through sequential stages of edge elimination, fine-fragment generation and adhesion, progressive consolidation/surface smoothing, and re-fragmentation. The experimental results indicate that the final particle morphology is governed by the competition between consolidation and fracture during ball milling and that a moderate milling speed is essential for achieving a high sphericity together with a relatively uniform particle size distribution.
- (2)
- The near-spherical δ-Nb3Al particles can be introduced into the nickel-based matrix by powder metallurgy, but extensive interdiffusion occurs during HIP at 1100 °C/120 MPa/2 h. As a result, besides the γ matrix and residual δ-Nb3Al, multiple Nb-rich secondary phases, including Laves-(Ni, Cr)2Nb, Ni6Nb7, Nbss, and Ni3Nb, are formed in the consolidated alloy. These results indicate that the role of HIP is not limited to densification but also involves significant interfacial reaction and phase transition between the reinforcement and the matrix.
- (3)
- A distinct multilayer interfacial reaction zone is formed between δ-Nb3Al and the surrounding matrix after HIP. Combined with EBSD and EDS, thermodynamic analysis shows that the interfacial phase sequence is closely related to both diffusion paths and the relative thermodynamic stability of competing phases. The effective heat-of-formation model is consistent with the experimentally observed multilayer structure, in which the Laves phase is located closest to the matrix, followed by Ni6Nb7 and Nbss, while residual δ-Nb3Al remains at the core.
- (4)
- Quantitative image analysis shows that the retained volume fraction of δ-Nb3Al after HIP is only about 9.85%, which is much lower than the initial addition level (50 vol.%). The dissolution of δ-Nb3Al is mainly driven by Nb diffusion and the formation of secondary interfacial phases, indicating that the present strengthening strategy remains scientifically meaningful in terms of powder preparation and interfacial phase-transition control but is not yet a practically effective direct-reinforcement strategy under the present HIP condition. Improving the retention of δ-Nb3Al will require further optimization of HIP temperature and holding time and possibly a reduction in interfacial reaction kinetics. Although the present microstructural results suggest possible local strengthening from retained δ-Nb3Al and Nb-rich interfacial phases, the actual mechanical benefit remains uncertain because of the low retained fraction and the formation of brittle reaction products.
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
References
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| Cr | Co | Mo | W | Ni |
|---|---|---|---|---|
| 10.10 | 14.60 | 4.60 | 6.10 | Bal. |
| Phase | Crystal Structure | Space Group | Reference PDF Card | Identification in This Work |
|---|---|---|---|---|
| δ-Nb3Al | A15/cubic | Pm-3n | 12-0085 | XRD; retained particles in SEM/BSE |
| Matrix | FCC/cubic | Fm-3m | 01-071-7594 | Alloy XRD + EBSD |
| Laves-(Ni, Cr)2Nb | Cubic C15 Laves | Fd-3m | 04-004-6470 | Alloy XRD + EDS |
| Ni3Nb | Orthorhombic | Pmmn | 04-004-4907 | EBSD + EDS |
| Ni6Nb7 | Hexagonal | R-3m | 00-015-0268 | EBSD + EDS |
| Nbss | BCC/cubic | Im-3m | 34-0370 | EBSD + EDS |
| Position | Ni | Cr | Co | Mo | W | Nb | Al | |
|---|---|---|---|---|---|---|---|---|
| globular phase | ① | 64.96 | 2.76 | 7.14 | 0.32 | 0.65 | 8.50 | 14.68 |
| rod-like phase | ② | 66.02 | 3.82 | 7.17 | 0.42 | 0.71 | 10.94 | 10.92 |
| block-like phase | ③ | 62.70 | 1.53 | 10.27 | 0.01 | 0.60 | 23.46 | 1.42 |
| Interface | Phase | Effective Heat of Formation (kJ/mol) |
|---|---|---|
| Matrix/δ-Nb3Al | Ni3Nb | −12.57 |
| Ni6Nb7 | −18.36 | |
| Matrix/Ni6Nb7 | (Ni, Cr)2Nb | −16.71 |
| Ni3Nb | −10.42 | |
| Ni6Nb7 | −13.51 | |
| Matrix/Laves-(Ni, Cr)2Nb | Ni3Nb | −14.72 |
| Ni6Nb7 | −10.36 | |
| Co2Nb | −9.88 | |
| Co3Nb | −9.37 |
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Liu, X.; Zhang, B.; Wang, G.; Liu, H.; Zhang, F.; Gao, Y.; Mao, H.; Zheng, L. Preparation of Spherical δ-Nb3Al Powders and Their Phase Transition Behavior in Powder Metallurgy Nickel-Based Superalloys During Hot Isostatic Pressing. Metals 2026, 16, 422. https://doi.org/10.3390/met16040422
Liu X, Zhang B, Wang G, Liu H, Zhang F, Gao Y, Mao H, Zheng L. Preparation of Spherical δ-Nb3Al Powders and Their Phase Transition Behavior in Powder Metallurgy Nickel-Based Superalloys During Hot Isostatic Pressing. Metals. 2026; 16(4):422. https://doi.org/10.3390/met16040422
Chicago/Turabian StyleLiu, Xiao, Boning Zhang, Guowei Wang, Hongliang Liu, Feilong Zhang, Yang Gao, He Mao, and Lei Zheng. 2026. "Preparation of Spherical δ-Nb3Al Powders and Their Phase Transition Behavior in Powder Metallurgy Nickel-Based Superalloys During Hot Isostatic Pressing" Metals 16, no. 4: 422. https://doi.org/10.3390/met16040422
APA StyleLiu, X., Zhang, B., Wang, G., Liu, H., Zhang, F., Gao, Y., Mao, H., & Zheng, L. (2026). Preparation of Spherical δ-Nb3Al Powders and Their Phase Transition Behavior in Powder Metallurgy Nickel-Based Superalloys During Hot Isostatic Pressing. Metals, 16(4), 422. https://doi.org/10.3390/met16040422

