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Microstructure evolution of the W-C hard coatings using directed energy deposition on tungsten alloy surface.

Authors :
Zhang, Xinrui
Fu, Weijie
Lei, Zhenglong
Wu, Shibo
Liang, Jingwei
Li, Bingwei
Source :
Surface & Coatings Technology. Oct2023, Vol. 470, pN.PAG-N.PAG. 1p.
Publication Year :
2023

Abstract

Herein, we propose a method for producing W C composite ceramic coatings on tungsten alloy surfaces using directed energy deposition (DED). Different microstructures of DED single tracks were obtained with different line energy densities. Two parts of DED tracks were discovered, which contained the W C fusion zone and the WC-Ni-Co melting injection zone. The W C fusion zone mainly comprised four typical phases, WC, W 2 C, W, and C(diamond, graphite (D, G)), which were present in the microstructures of the tracks in different combinations. The key factor for determining the microstructure evolution was C content. With higher line energy density, more tungsten alloy melted, which decreased C content in the melt pool. As C content decreased, the composition of the microstructure transformed to C(D, G) + WC + W 2 C → WC + W 2 C → W 2 C + W + a small amount of γ-(Ni, Co). C content gradually decreased from the top to the bottom of the melt pool, resulting in a gradient microstructure transition. The microstructure and property could be tuned by controlling the C content. The hardness was the highest, 2300 HV, at 40.7 at.% C with WC-W 2 C eutectoid. This study provides practical insights for producing coatings on tungsten alloy surfaces with optimized process parameters and for tailoring mechanical properties. • DED W-C composite ceramic material on the surface of W alloy was prepared. • W-C fusion zone and WC-Ni-Co melting injection zone of DED tracks were discovered. • The key factor for determining the microstructure evolution was C content. • The hardness of the microstructure was the highest, 2300 HV, with 40.7 at.% C. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
02578972
Volume :
470
Database :
Academic Search Index
Journal :
Surface & Coatings Technology
Publication Type :
Academic Journal
Accession number :
169874423
Full Text :
https://doi.org/10.1016/j.surfcoat.2023.129827