Room and High Temperature Tribological Performance of Multilayered TiSiN/TiN and TiSiN/TiN(Ag) Coatings Deposited by Sputtering
Abstract
:1. Introduction
2. Materials and Methods
3. Results
3.1. Friction Coefficient
3.1.1. Al2O3 Balls
3.1.2. TiAl6V4 Balls
3.2. Specific Wear Rate of Coatings and Balls
3.2.1. Al2O3 Balls
3.2.2. TiAl6V4 Balls
4. Discussion
4.1. Al2O3 Balls
4.2. TiAl6V4 Balls
5. Conclusions
- Sliding against Al2O3 balls led to the formation of relatively smooth wear tracks at RT.
- The reference coating displayed a better performance due to its high hardness and fracture toughness as compared to the Ag-alloyed coating.
- At 550 °C, the reference coating failed, while the Ag-doped coating showed a better performance due to the presence of Ag on the contact, which decreased the shear strength and consequently the friction.
- Ag-doped coating was always better than reference coating.
- At room temperature, the wear was governed by the contact between the material from the ball adhering to the coating and the ball material, i.e., TiAl6V4 sliding against itself.
- At 550 °C, the presence of Ag at the contact prevented the adhesion of the oxidized Ti-alloy wear debris in the contact, favoring the adhesion of wear debris from the coating to both elements of the sliding pair and thus leading to a better performance.
- No wear could be observed at 700 °C for both coatings. However, whilst spikes coming out from the wear track of the reference coating could be detected, suggesting a strong adhesion wear mechanism, the wear track of the Ag-doped coating displayed a smooth surface that was almost absent of adhesion wear.
- The presence of Ag-agglomerated particles on the wear track of the TiSiN/TiN(Ag) coating decreased friction and hindered the adhesion of material to the wear track.
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
References
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Sample Designation | TiSiN/TiN | TiSiN/TiN(Ag) |
---|---|---|
Chemical composition (at.%) | Ti—46.1 | Ti—42.3 |
Si—4.6 | Si—4.3 | |
N—49.3 | N—50.2 | |
– | Ag—3.2 | |
Hardness (H) (GPa) | 26 ± 4 | 18 ± 4 |
Reduced modulus (E) (GPa) | 334 ± 28 | 286 ± 23 |
Elastic strain to failure—H/E | 0.078 | 0.062 |
Onset point of oxidation (°C) | 700 °C | 700 °C |
Oxidation weight gain at 800 °C for 2 h mg/cm2 | 0.025 | 0.16 |
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Fernandes, F.; AL-Rjoub, A.; Cavaleiro, D.; Polcar, T.; Cavaleiro, A. Room and High Temperature Tribological Performance of Multilayered TiSiN/TiN and TiSiN/TiN(Ag) Coatings Deposited by Sputtering. Coatings 2020, 10, 1191. https://doi.org/10.3390/coatings10121191
Fernandes F, AL-Rjoub A, Cavaleiro D, Polcar T, Cavaleiro A. Room and High Temperature Tribological Performance of Multilayered TiSiN/TiN and TiSiN/TiN(Ag) Coatings Deposited by Sputtering. Coatings. 2020; 10(12):1191. https://doi.org/10.3390/coatings10121191
Chicago/Turabian StyleFernandes, Filipe, Abbas AL-Rjoub, Diogo Cavaleiro, Tomas Polcar, and Albano Cavaleiro. 2020. "Room and High Temperature Tribological Performance of Multilayered TiSiN/TiN and TiSiN/TiN(Ag) Coatings Deposited by Sputtering" Coatings 10, no. 12: 1191. https://doi.org/10.3390/coatings10121191
APA StyleFernandes, F., AL-Rjoub, A., Cavaleiro, D., Polcar, T., & Cavaleiro, A. (2020). Room and High Temperature Tribological Performance of Multilayered TiSiN/TiN and TiSiN/TiN(Ag) Coatings Deposited by Sputtering. Coatings, 10(12), 1191. https://doi.org/10.3390/coatings10121191