Tribological performance under different environments of Ti—C—N composite films for marine wear-resistant parts
Hongbo Ju , Rui Zhou , Jing Luan , Ch Sateesh Kumar , Lihua Yu , Junhua Xu , Junfeng Yang , Bowei Zhang , Filipe Fernandes
International Journal of Minerals, Metallurgy, and Materials ›› 2023, Vol. 30 ›› Issue (1) : 144 -155.
Tribological performance under different environments of Ti—C—N composite films for marine wear-resistant parts
The need for reducing the wear in mechanical parts used in the industry makes self-lubricant films one of the sustainable solutions to achieve long-term protection under different environmental conditions. The purpose of this work is to study the influence of C additions on the tribological behavior of a magnetron-sputtered TiN film in air, water, and seawater. The results show that the addition of C into the TiN binary film induced a new amorphous phase, and the films exhibited a dual phase of fcc (face-centered cubic)-TiN and amorphous carbon. The antifriction and wear-resistance properties were enhanced in air and water by adding 19.1at% C. However, a further increase in the C concentration improved anti-frictional properties but also led to higher wear rates. Although the amorphous phase induced microbatteries and accelerated the corrosion of TiN phases in seawater, the negative abrasion state was detected for all Ti—C—N films due to the adhesion of the tribocorrosion debris on the wear track.
RF reactive magnetron sputtering / Ti—C—N films / microstructure / tribological properties in air/water/seawater
| [1] |
R. Grinon-Echaniz, P. Refait, M. Jeannin, et al., Study of cathodic reactions in defects of thermal spray aluminium coatings on steel in artificial seawater, Corros. Sci., 187(2021), art. No. 109514. |
| [2] |
D.P. Wang, G. Chen, A.D. Wang, et al., Corrosion behavior of single- and poly-crystalline dual-phase TiAl—Ti3Al alloy in NaCl solution, Int. J. Miner. Metall. Mater., 2022. DOI: https://doi.org/10.1007/s12613-022-2513-5 |
| [3] |
H.S. Wu, G.Z. Shen, R.X. Li, et al, Influence of embedded reduced graphene oxide on the corrosion-wear performance of cold sprayed Zn-rGO/Al coating in NaCl solution, Surf. Coat. Technol., 429(2022), art. No. 127856. |
| [4] |
|
| [5] |
M.D. Zhang, F. Zhou, Y.J. Wu, Q.Z. Wang, and Z.F. Zhou, Microstructure and electrochemical characteristics of CrMoN/Ag nanocomposite coatings in seawater, Surf. Coat. Technol., 441(2022), art. No. 128551. |
| [6] |
|
| [7] |
|
| [8] |
|
| [9] |
H.B. Ju, D. Yu, J.H. Xu, et al., Microstructure, mechanical, and tribological properties of niobium vanadium carbon nitride films, J. Vac. Sci. Technol. A, 36(2018), No. 3, art. No. 031511. |
| [10] |
R. Wang, J.X. Deng, Z.H. Zhang, et al., Microstructure and wear performance of electro-sprayed self-lubricating Ni3Al/Cr3C2—MoS2 composite films, Surf. Coat. Technol., 428(2021), art. No. 127862. |
| [11] |
|
| [12] |
|
| [13] |
R. Zhou, H.B. Ju, S.J. Liu, et al., The influences of Ag content on the friction and wear properties of TiCN—Ag films, Vacuum, 196(2022), art. No. 110719. |
| [14] |
Y. Xia, Z.G. Xu, J. Peng, Q. Shen, and C.B. Wang, In-situ formation, structural transformation and mechanical properties CrN coatings prepared by MPCVD, Surf. Coat. Technol., 441(2022), art. No. 128522. |
| [15] |
R. Akhter, Z.F. Zhou, Z.H. Xie, and P. Munroe, TiN versus TiSiN coatings in indentation, scratch and wear setting, Appl. Surf. Sci., 563(2021), art. No. 150356. |
| [16] |
M. Jafari, L. Rogström, J.M. Andersson, et al., Thermal degradation of TiN and TiAlN coatings during rapid laser treatment, Surf. Coat. Technol., 422(2021), art. No. 127517. |
| [17] |
H.B. Ju, R. Zhou, S.J. Liu, et al., Enhancement of the tribological behavior of self-lubricating nanocomposite Mo2N/Cu films by adding the amorphous SiN x, Surf. Coat. Technol., 423(2021), art. No. 127565. |
| [18] |
H.B. Ju, N. Ding, J.H. Xu, et al., The tribological behavior of niobium nitride and silver composite films at elevated testing temperatures, Mater. Chem. Phys., 237(2019), art. No. 121840. |
| [19] |
C.K. Liu, H.B. Ju, J.H. Xu, et al., Influence of copper on the compositions, microstructure and room and elevated temperature tribological properties of the molybdenum nitride film, Surf. Coat. Technol., 395(2020), art. No. 125811. |
| [20] |
H.B. Ju, R. Wang, W.X. Wang, et al., The microstructure and tribological properties of molybdenum and silicon nitride composite films, Surf. Coat. Technol., 401(2020), art. No. 126238. |
| [21] |
|
| [22] |
S.Q. Song, X.F. Cui, G. Jin, et al., Effect of N + Cr ions implantation on corrosion and tribological properties in simulated seawater of carburized alloy steel, Surf. Coat. Technol., 385(2020), art. No. 125357. |
| [23] |
Y.Q. Fu, F. Zhou, and M.D. Zhang, The enhancement of individual friction and corrosion properties of CrSiN coatings by Mo doping in seawater, Surf. Coat. Technol., 432(2022), art. No. 128069. |
| [24] |
P. Zhang, L. Shan, X.L. Su, et al., Microstructure and tribological performance of CrTiSiCN coatings on 316L and TC4 in seawater, Tribol. Int., 156(2021), art. No. 106832. |
| [25] |
|
| [26] |
C.K. Liu, H.B. Ju, P.X. Han, et al., The influence of carbon content on the microstructure, mechanical and frictional property of chromium carbon nitride composite films, Vacuum, 178(2020), art. No. 109368. |
| [27] |
|
| [28] |
G.F. Zheng, Q. Jiao, C. Li, et al., Influence of nitridation on the microstructure and corrosion behavior of reactive plasma sprayed TiCN coatings, Surf. Coat. Technol., 396(2020), art. No. 125954. |
| [29] |
H.B. Ju, R. Wang, N. Ding, et al., Improvement on the oxidation resistance and tribological properties of molybdenum disulfide film by doping nitrogen, Mater. Des., 186(2020), art. No. 108300. |
| [30] |
|
| [31] |
B. Yi, S.H. Zhou, Z.G. Qiu, and D.C. Zeng, The influences of pulsed bias duty cycle on tribological properties of solid lubricating TiMoCN coatings, Vacuum, 180(2020), art. No. 109552. |
| [32] |
H.B. Ju, R. Zhou, J. Luan, et al., Multilayer Mo2N—Ag/SiNx films for demanding applications: Morphology, structure and temperature-cucling tribological properties, Mater. Des., 223(2022), art. No. 111128. |
| [33] |
|
| [34] |
|
| [35] |
H.Q. Wang, Y. Ou, X. Zhang, et al., Tribocorrosion behaviors of TiSiCN nanocomposite coatings deposited by high power impulse magnetron sputtering, Mater. Res. Express, 7(2020), art. No. 076407. |
| [36] |
O. Savchuk and A.A. Volinsky, Nonparametric estimation of SiC film residual stress from the wafer surface profile, Measurement, 177(2021), art. No. 109238. |
| [37] |
|
| [38] |
|
| [39] |
|
| [40] |
|
| [41] |
|
| [42] |
|
| [43] |
F.Y. Yan, B.L. Jiang, Z.Y. Wang, et al., Thermal stabilization of nanocrystalline promoting conductive corrosion resistance of TiN—Ag films for metal bipolar plates, Vacuum, 195(2022), art. No. 110631. |
| [44] |
|
| [45] |
|
| [46] |
|
| [47] |
|
| [48] |
|
| [49] |
T.W.B. Riyadi, D. Setiadhi, A.D. Anggono, W.A. Siswanto, and H.H. Al-Kayiem, Analysis of mechanical and thermal stresses due to TiN coating of Fe substrate by physical vapor deposition, Forces Mech., 4(2021), art. No. 100042. |
| [50] |
|
| [51] |
J.J. Wang and F.Y. Ouyang, Nanotwinned medium entropy alloy CoCrFeNi thin films with ultra-high hardness: Modifying residual stress without scarifying hardness through tuning substrate bias, Surf. Coat. Technol., 434(2022), art. No. 128191. |
| [52] |
|
| [53] |
Y.X. Ou, H.Q. Wang, Q.S. Hua, B. Liao, and X.P. Ouyang, Tribocorrosion behaviors of superhard yet tough Ti—C—N ceramic coatings, Surf. Coat. Technol., 439(2022), art. No. 128448. |
| [54] |
R.Z. Li, S.H. Wang, J.B. Pu, et al., Study of NaCl-induced hot-corrosion behavior of TiN single-layer and TiN/Ti multilayer coatings at 500°C, Corros. Sci., 192(2021), art. No. 109838. |
| [55] |
|
| [56] |
|
| [57] |
K.L. Ming, Z.H. Zhang, and H.B. Li, In situ growth of NaTiO2 nanotubes on Ti3C2Fx for enhanced sodium ion batteries, Mater. Lett., 309(2022), art. No. 131457. |
| [58] |
|
| [59] |
|
| [60] |
|
| [61] |
J. Liu, S.J. Li, C. Wang, et al., Self-lubricating design strategy for thermally sprayed ceramic coatings by in situ synthesis of carbon spheres, Surf. Coat. Technol., 446(2022), art. No. 128759. |
| [62] |
I. Çaha, A.C. Alves, C. Chirico, et al., Improved tribocorrosion behavior on bio-functionalized β-type titanium alloy by the pillar effect given by TiN reinforcements, Surf. Coat. Technol., 415(2021), art. No. 127122. |
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