TY - JOUR
T1 - Preparation of NiAlW coating by APS and HVOF spraying
T2 - Microstructure evolution, mechanical properties, and high-temperature tribological behavior
AU - Yang, Zhiqiang
AU - Liu, Daoxin
AU - Zhou, Kai
AU - Gao, Fei
AU - Liu, Yanjie
AU - Li, Mengyao
AU - Wu, Junnan
AU - Fan, Kaifa
AU - Zhang, Xiaohua
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/7/15
Y1 - 2025/7/15
N2 - The wear-resistant NiAlW coatings were prepared using atmospheric plasma spraying (APS) and high-velocity oxygen fuel (HVOF) techniques, respectively. The microstructure, mechanical properties, and tribological performance of the coatings were studied, and the wear mechanisms were explored. The results showed that the NiAlW coatings produced by both techniques are primarily composed of the NiAl phase, with the HVOF-prepared coating exhibiting higher density, hardness, and adhesive strength. In the wear test at 200 °C–800 °C, the friction coefficient (COF) and wear rate of APS-prepared coating (A-NiAlW) and HVOF-prepared coating (H-NiAlW) showed a trend of first increasing and then decreasing. At low temperature of 200 °C, A-NiAlW coating was mainly abrasive wear and oxidation wear, while H-NiAlW coating was mainly abrasive wear and adhesion wear. When the temperature rose to 400 °C, both coatings faced relatively serious adhesive wear, resulting in an increase in COF and wear rate. Under high-temperature conditions, the significant generation of self-lubricating phases such as NiAl2O4 and NiWO4 provided good lubrication effects, effectively reducing wear and resulting in excellent tribological performance for both coatings at elevated temperatures.
AB - The wear-resistant NiAlW coatings were prepared using atmospheric plasma spraying (APS) and high-velocity oxygen fuel (HVOF) techniques, respectively. The microstructure, mechanical properties, and tribological performance of the coatings were studied, and the wear mechanisms were explored. The results showed that the NiAlW coatings produced by both techniques are primarily composed of the NiAl phase, with the HVOF-prepared coating exhibiting higher density, hardness, and adhesive strength. In the wear test at 200 °C–800 °C, the friction coefficient (COF) and wear rate of APS-prepared coating (A-NiAlW) and HVOF-prepared coating (H-NiAlW) showed a trend of first increasing and then decreasing. At low temperature of 200 °C, A-NiAlW coating was mainly abrasive wear and oxidation wear, while H-NiAlW coating was mainly abrasive wear and adhesion wear. When the temperature rose to 400 °C, both coatings faced relatively serious adhesive wear, resulting in an increase in COF and wear rate. Under high-temperature conditions, the significant generation of self-lubricating phases such as NiAl2O4 and NiWO4 provided good lubrication effects, effectively reducing wear and resulting in excellent tribological performance for both coatings at elevated temperatures.
KW - Atmospheric plasma spraying (APS)
KW - High-velocity oxygen-fuel (HVOF)
KW - Lubricating phase
KW - NiAlW coatings
KW - Tribological properties
UR - http://www.scopus.com/inward/record.url?scp=105002692566&partnerID=8YFLogxK
U2 - 10.1016/j.surfcoat.2025.132164
DO - 10.1016/j.surfcoat.2025.132164
M3 - 文章
AN - SCOPUS:105002692566
SN - 0257-8972
VL - 508
JO - Surface and Coatings Technology
JF - Surface and Coatings Technology
M1 - 132164
ER -