TY - JOUR
T1 - Enhanced steam oxidation resistance of Cr-coated Zr-4 alloy by an evolving Mo-based diffusion barrier
T2 - A kinetic and mechanistic study
AU - Zheng, Qining
AU - Wu, Jiaojiao
AU - Xu, Hailong
AU - Wang, Yanfeng
AU - Wang, Shaopeng
AU - Zhang, Chengyu
N1 - Publisher Copyright:
© 2026
PY - 2026/9/25
Y1 - 2026/9/25
N2 - Cr coatings on Zr alloys suffer from Zr–Cr interdiffusion-induced Kirkendall voiding, blistering, and eutectic-related degradation under high-temperature steam oxidation. Herein, a Mo diffusion barrier was introduced using multi-arc ion plating to retard interfacial diffusion and improve oxidation resistance. The oxidation kinetics, cross-sectional microstructure, interfacial phase evolution and diffusion behavior in the Cr–Mo–Zr system were investigated during steam oxidation. The Mo layer does not change the intrinsic oxidation mechanism of Cr coating because of both coatings exhibiting similar activation energies (∼220 kJ/mol). Compared to the Cr coating, the parabolic oxidation stage of Cr/Mo coating is prolonged, the parabolic rate constant (kp) is halved in 1200–1400℃, and the effective protection time is extended from 60 min to 180 min at 1200℃. Microstructural and phase analyses reveal that the Mo layer progressively evolves into a continuous Zr(Cr, Mo)2 interlayer, which acts as a secondary diffusion barrier. The Cr diffusion coefficient in Zr(Cr, Mo)2 is one order of magnitude lower than that in ZrCr2, thereby suppressing Zr-Cr interdiffusion and Kirkendall void formation, and further inhibiting blistering and eutectic-like microstructure, which are the primary degradation mechanism of Cr coating. The eventual degradation of the Cr/Mo coating is governed by progressive reduction by outward-diffusing Zr and degraded oxide layer.
AB - Cr coatings on Zr alloys suffer from Zr–Cr interdiffusion-induced Kirkendall voiding, blistering, and eutectic-related degradation under high-temperature steam oxidation. Herein, a Mo diffusion barrier was introduced using multi-arc ion plating to retard interfacial diffusion and improve oxidation resistance. The oxidation kinetics, cross-sectional microstructure, interfacial phase evolution and diffusion behavior in the Cr–Mo–Zr system were investigated during steam oxidation. The Mo layer does not change the intrinsic oxidation mechanism of Cr coating because of both coatings exhibiting similar activation energies (∼220 kJ/mol). Compared to the Cr coating, the parabolic oxidation stage of Cr/Mo coating is prolonged, the parabolic rate constant (kp) is halved in 1200–1400℃, and the effective protection time is extended from 60 min to 180 min at 1200℃. Microstructural and phase analyses reveal that the Mo layer progressively evolves into a continuous Zr(Cr, Mo)2 interlayer, which acts as a secondary diffusion barrier. The Cr diffusion coefficient in Zr(Cr, Mo)2 is one order of magnitude lower than that in ZrCr2, thereby suppressing Zr-Cr interdiffusion and Kirkendall void formation, and further inhibiting blistering and eutectic-like microstructure, which are the primary degradation mechanism of Cr coating. The eventual degradation of the Cr/Mo coating is governed by progressive reduction by outward-diffusing Zr and degraded oxide layer.
KW - Cr-coated Zr-4 alloy
KW - Mo-based diffusion barrier
KW - Oxidation kinetics
KW - Steam oxidation behavior
UR - https://www.scopus.com/pages/publications/105047647791
U2 - 10.1016/j.jallcom.2026.190473
DO - 10.1016/j.jallcom.2026.190473
M3 - 文章
AN - SCOPUS:105047647791
SN - 0925-8388
VL - 1080
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 190473
ER -