Microstructure and Wear Resistance of In Situ Synthesized Ti(C, N) Ceramic-Reinforced Nickel-Based Coatings by Laser Cladding
Abstract
:1. Introduction
2. Methods and Materials
2.1. Preparation and Properties of Material Samples
2.2. Experimental Setup for Laser Cladding
2.3. Tribological Tests and Tribometers
3. Results and Discussion
3.1. Thermodynamic Calculations
3.2. XRD and EDS Analysis
3.3. Friction Wear Performance Analysis
3.4. Hardness Analysis
4. Conclusions
- (1)
- Based on the analysis of thermodynamic calculations, the possible chemical reactions and the priority order during laser cladding were determined. The replacement reaction of TiN and graphite could be carried out when the temperature was higher than 1890 K. Moreover, the diffraction peaks of Ti(C, N) increased with the increase in the addition of TiN and graphite.
- (2)
- The X-ray diffraction (XRD) patterns indicate that the expected ceramic phase was synthesized in situ in the composite coating. Against the thermodynamic analysis, it can be seen that C can displace [N] in TiN at 1900 K, forming Ti(C, N) in the outer layer of large-particle TiN; the crystal structures of TiC and TiN are very similar; and small-particle TiN can form Ti(C, N) solid solution directly. Combined with the previous XRD and thermodynamic analyses, it can be judged to be a Ti(C, N) solid solution formed with C elements after the melting of small-grained TiN.
- (3)
- As TiN, Ti, and graphite powder additions increased, the friction coefficient of the composite coatings decreased and the wear resistance was improved. In addition, the friction coefficient and wear rate of sample 4 are 0.829 and 0.145 times those of the substrate, exhibiting the best wear resistance. The reason is that with the increase in TiN, Ti, and graphite added in the powder, the ceramic phase in the fusion cladding layer, TiC, Ti (C, N) and Ti2Ni, and other hard phases play the structural role of the “skeleton”, inhibiting the damage brought about by the micro-cutting to impede the movement of the tearing point of the incision so that the coating has higher abrasion resistance.
- (4)
- With the increase in TiN + Ti + Ni-encapsulated graphite addition, the average microhardness of the coatings increased from 436.5 to 583.7 HV0.3, and the average microhardness of coatings of specimens 1#–4# was 1.62, 1.71, 1.81, and 1.92 times higher than that of the set plate, respectively. The average microhardness of the coatings is proportional to the content of the initial powder, TiN + Ti + C. The reasons for this were analyzed to be the in situ synthesis of Ti (C, N) ceramic particles and multiple ceramic phases and the increase in hard phases, such as TiNi and CrXCY, which enhanced the coating’s ability to resist deformation.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
References
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Sample | Component Content (wt.%) | Process Parameters | |||||||
---|---|---|---|---|---|---|---|---|---|
Ni625 | TiN | Ti | C | Laser Power | Scanning Speed | Powder Feeding Rate | Track Distance | Z-Axis Increment | |
1# | 90 | 5.08 | 3.93 | 0.99 | 480 W | 6.0 mm/s | 0.7 r/min | 30% | 0.32 mm |
2# | 80 | 10.16 | 7.87 | 1.97 | |||||
3# | 70 | 15.24 | 11.8 | 2.96 | |||||
4# | 60 | 20.32 | 15.73 | 3.95 |
Component | Cr | Mo | Nb | Mn | Si | C | Al | V | Ni | Fe | Ti | N |
---|---|---|---|---|---|---|---|---|---|---|---|---|
In625 | 20.0–23.0 | 8.0–10.0 | 3.15–4.15 | ≤0.5 | ≤0.5 | 0.02 | Bal. | ≤5.0 | ||||
TC4 | - | - | - | - | - | 0.10 | 6.03 | 4.01 | ≤0.3 | 0.3 | Bal. | 0.01 |
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Li, J.; Chen, Y.; Guan, C.; Zhang, C.; Zhao, J.; Yu, T. Microstructure and Wear Resistance of In Situ Synthesized Ti(C, N) Ceramic-Reinforced Nickel-Based Coatings by Laser Cladding. Materials 2024, 17, 3878. https://doi.org/10.3390/ma17153878
Li J, Chen Y, Guan C, Zhang C, Zhao J, Yu T. Microstructure and Wear Resistance of In Situ Synthesized Ti(C, N) Ceramic-Reinforced Nickel-Based Coatings by Laser Cladding. Materials. 2024; 17(15):3878. https://doi.org/10.3390/ma17153878
Chicago/Turabian StyleLi, Juncai, Ying Chen, Chuang Guan, Chao Zhang, Ji Zhao, and Tianbiao Yu. 2024. "Microstructure and Wear Resistance of In Situ Synthesized Ti(C, N) Ceramic-Reinforced Nickel-Based Coatings by Laser Cladding" Materials 17, no. 15: 3878. https://doi.org/10.3390/ma17153878
APA StyleLi, J., Chen, Y., Guan, C., Zhang, C., Zhao, J., & Yu, T. (2024). Microstructure and Wear Resistance of In Situ Synthesized Ti(C, N) Ceramic-Reinforced Nickel-Based Coatings by Laser Cladding. Materials, 17(15), 3878. https://doi.org/10.3390/ma17153878