Back to Search Start Over

A comparative investigation on microstructure evolution and wear resistance of in situ synthesized NbC, WC, TaC reinforced Mo2FeB2 coatings by laser cladding.

Authors :
Zhang, Hao
Zhang, Yang
Cao, Qiang
Pan, Yingjun
Lian, Guofu
Que, Linzhi
Zhu, Xingyu
Source :
Ceramics International. Jan2023, Vol. 49 Issue 1, p894-906. 13p.
Publication Year :
2023

Abstract

To improve the microhardness and wear resistance of Mo 2 FeB 2 coatings, composite coatings were prepared by laser cladding using in situ synthesized NbC, WC, and TaC. The influence of different carbides on the morphology, microstructure, microhardness, residual stress, and tribological properties of the composite coatings was investigated. The results showed various microstructural morphologies in different composite coatings. Apparent herringbone structures were observed in most coatings except for the Mo 2 FeB 2 /TaC composite coating and a eutectic structure was formed in the Mo 2 FeB 2 /WC composite coating. In addition, the heat-affected zone was typically composed of acicular martensite and lath martensite. The microhardness of the Mo 2 FeB 2 /WC composite coating increased to 1543.6 HV 0.5 compared with 985.7 HV 0.5 observed for the Mo 2 FeB 2 coating. Tensile stress existed in the coating, bonding zone, and heat-affected zone, whereas the substrate exhibited compressive stress. The Mo 2 FeB 2 /WC composite coating exhibited the lowest tensile stress (298 MPa). The Mo 2 FeB 2 /WC composite coating containing WC and the W 2 C phase had the lowest coefficient of friction (0.38) and wear rate (3.90 × 10−5 mm3/Nm), indicating its excellent tribological properties. Moreover, the wear mechanism of the Mo 2 FeB 2 coating is severe adhesive and abrasive wear. The adhesive wear mechanism was mitigated by the formation of in situ synthesized NbC, WC, and TaC. The wear mechanism of the Mo 2 FeB 2 /WC composite coating was only a slight abrasive wear. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02728842
Volume :
49
Issue :
1
Database :
Academic Search Index
Journal :
Ceramics International
Publication Type :
Academic Journal
Accession number :
160397637
Full Text :
https://doi.org/10.1016/j.ceramint.2022.09.064