TY - JOUR
T1 - Regulatory mechanism of N2 flow rate on structure and properties of CrAlNiYN coatings by FCVA technique
AU - Cao, Hongshuai
AU - Ouyang, Xiao
AU - Chen, Lin
AU - Wu, Jiakun
AU - Wu, Jie
AU - Wen, Wu
AU - Luo, Jun
AU - Liao, Bin
AU - Qi, Fugang
AU - Ouyang, Xiaoping
N1 - Publisher Copyright:
© 2024 Elsevier Ltd
PY - 2024/12
Y1 - 2024/12
N2 - In this work, a novel CrAlNiYN coating was prepared by filter cathode vacuum arc (FCVA) technique. The evolution of the microstructure and properties of the coatings with varying N2 flow rates was systematically investigated. The results revealed that as the N2 flow rate increased from 10 to 90 sccm, the N content in the coating increased from 2.54 to 46.20 at.%, while the Ni content significantly decreased from 67.54 to 31.15 at.%. Simultaneously, the phase structure transitioned from the intermetallic compound AlNi3 to the solid solution Al(Cr)N. This transformation, along with solid solution strengthening and grain refinement, resulted an increase in hardness from 13.4 ± 0.4 to 26.6 ± 0.6 GPa. Moreover, the H/E, H3/E2 and We values also displayed a gradually increasing trend, indicating improved resistance to plastic deformation. However, the adhesion strength presented a weakening trend from HF1 to HF3. Furthermore, the corrosion current density of coatings first increased and then slightly decreased with the increase of N2 flow rate, while the polarization resistance had the opposite trend of change. Among them, the coating at 10 sccm exhibited the best corrosion resistance, with the lowest icorr of 0.150 μA cm−2 and the highest Rp of 302.1 kΩ cm2.
AB - In this work, a novel CrAlNiYN coating was prepared by filter cathode vacuum arc (FCVA) technique. The evolution of the microstructure and properties of the coatings with varying N2 flow rates was systematically investigated. The results revealed that as the N2 flow rate increased from 10 to 90 sccm, the N content in the coating increased from 2.54 to 46.20 at.%, while the Ni content significantly decreased from 67.54 to 31.15 at.%. Simultaneously, the phase structure transitioned from the intermetallic compound AlNi3 to the solid solution Al(Cr)N. This transformation, along with solid solution strengthening and grain refinement, resulted an increase in hardness from 13.4 ± 0.4 to 26.6 ± 0.6 GPa. Moreover, the H/E, H3/E2 and We values also displayed a gradually increasing trend, indicating improved resistance to plastic deformation. However, the adhesion strength presented a weakening trend from HF1 to HF3. Furthermore, the corrosion current density of coatings first increased and then slightly decreased with the increase of N2 flow rate, while the polarization resistance had the opposite trend of change. Among them, the coating at 10 sccm exhibited the best corrosion resistance, with the lowest icorr of 0.150 μA cm−2 and the highest Rp of 302.1 kΩ cm2.
KW - CrAlNiYN coatings
KW - FCVA
KW - Mechanical and electrochemical properties
KW - Microstructure
KW - N flow rate
UR - https://www.scopus.com/pages/publications/85206833921
U2 - 10.1016/j.vacuum.2024.113745
DO - 10.1016/j.vacuum.2024.113745
M3 - 文章
AN - SCOPUS:85206833921
SN - 0042-207X
VL - 230
JO - Vacuum
JF - Vacuum
M1 - 113745
ER -