TY - JOUR
T1 - Microstructure and third-body behavior of Cu-MoS2-TiC composite coatings deposited by cold spray
AU - Li, Aosong
AU - Fang, Wendong
AU - Liang, Tongyue
AU - Alidokht, Sima A.
AU - Vo, Phuong
AU - Jodoin, Bertrand
AU - Chromik, Richard R.
N1 - Publisher Copyright:
© 2025 .
PY - 2026/2/1
Y1 - 2026/2/1
N2 - To investigate the effect of ceramic particle addition on the properties of cold sprayed MoS2-based metal matrix composite coatings, Cu-MoS2 and Cu-MoS2-TiC coatings were deposited using feedstocks containing 0 (CM), 15 (CM-15T), 30 (CM-30T) and 50 (CM-50T) wt% TiC, respectively, while maintaining a constant MoS2 ratio of 5.5 wt% relative to the combined Cu and MoS2 powders. The influence of TiC content on the coatings microstructure and mechanical properties was systematically evaluated. TiC addition led to a tamping effect that densified the coatings and enhanced plastic deformation of the Cu matrix, thereby improving cohesion strength as well as nano- and micro-hardness. However, MoS2 retention decreased in CM-30T and CM-50T. Polished coating surfaces were tested for reciprocating sliding wear using a ball-on-plate tribometer in dry air and nitrogen, with Al2O3 spheres as counterbodies. CM showed low coefficients of friction but the highest wear rate in both environments because of its inferior mechanical properties. In dry air, CM-15T demonstrated the lowest friction and superior wear resistance, attributed to its high MoS2 retention and improved mechanical properties. Mild abrasive wear in CM-15T suggested a significant reduction in adhesive wear which was dominant for the other coatings. In nitrogen, adhesive wear was minimal for all coatings. The high MoS2 content in CM-15T contributed to low coefficients of friction. CM-50T exhibited the lowest wear rate, benefiting from its high hardness, enhanced cohesion strength, and more retained TiC particles that facilitated the fast formation of hard tribo-layers. These findings highlight the interplay between tribological behavior, mechanical properties, tribo-oxidation, and third-body effects in metal matrix composite coatings incorporating solid lubricants and hard phases.
AB - To investigate the effect of ceramic particle addition on the properties of cold sprayed MoS2-based metal matrix composite coatings, Cu-MoS2 and Cu-MoS2-TiC coatings were deposited using feedstocks containing 0 (CM), 15 (CM-15T), 30 (CM-30T) and 50 (CM-50T) wt% TiC, respectively, while maintaining a constant MoS2 ratio of 5.5 wt% relative to the combined Cu and MoS2 powders. The influence of TiC content on the coatings microstructure and mechanical properties was systematically evaluated. TiC addition led to a tamping effect that densified the coatings and enhanced plastic deformation of the Cu matrix, thereby improving cohesion strength as well as nano- and micro-hardness. However, MoS2 retention decreased in CM-30T and CM-50T. Polished coating surfaces were tested for reciprocating sliding wear using a ball-on-plate tribometer in dry air and nitrogen, with Al2O3 spheres as counterbodies. CM showed low coefficients of friction but the highest wear rate in both environments because of its inferior mechanical properties. In dry air, CM-15T demonstrated the lowest friction and superior wear resistance, attributed to its high MoS2 retention and improved mechanical properties. Mild abrasive wear in CM-15T suggested a significant reduction in adhesive wear which was dominant for the other coatings. In nitrogen, adhesive wear was minimal for all coatings. The high MoS2 content in CM-15T contributed to low coefficients of friction. CM-50T exhibited the lowest wear rate, benefiting from its high hardness, enhanced cohesion strength, and more retained TiC particles that facilitated the fast formation of hard tribo-layers. These findings highlight the interplay between tribological behavior, mechanical properties, tribo-oxidation, and third-body effects in metal matrix composite coatings incorporating solid lubricants and hard phases.
KW - Cold sprayed coatings
KW - Cu-MoS-TiC composites
KW - Dry sliding wear
KW - Third bodies behavior
UR - https://www.scopus.com/pages/publications/105024409740
U2 - 10.1016/j.wear.2025.206464
DO - 10.1016/j.wear.2025.206464
M3 - Journal Article
AN - SCOPUS:105024409740
SN - 0043-1648
VL - 586
JO - Wear
JF - Wear
M1 - 206464
ER -