TY - JOUR
T1 - Stress-medium synergistic hot corrosion failure mechanism and kinetics model of a Ni-based superalloy
AU - Pei, H. Q.
AU - Zuo, T.
AU - Wang, J. Y.
AU - Zhang, H.
AU - Wen, Z. X.
AU - Wen, S. F.
AU - Yue, Z. F.
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/12/1
Y1 - 2025/12/1
N2 - The hot corrosion behavior of a Ni-based superalloy was investigated under tensile stresses of 0, 60, and 120 MPa at 750 °C using XRD, OM, SEM, and EDS. The corrosion medium consisted of a 75 % Na2SO4–25 % NaCl salt mixture. The influence of tensile stress on oxide film microstructure, elemental diffusion, and corrosion kinetics was systematically analyzed. Results revealed that tensile stress accelerated hot corrosion via two key mechanisms: (1) enhancing the bidirectional diffusion of Cr and S, and (2) degrading the oxide film's integrity. The thickness of Cr-depleted layers, which varied with applied stress, served as a quantitative indicator of corrosion kinetics. The corrosion process progressed through three distinct stages, corresponding to oxide film growth, cracking/spalling, and reformation. A synergistic degradation mechanism was proposed, combining stress and hot corrosion effects. Outward Cr diffusion initially formed a protective Cr2O3-rich layer, but tensile stress and corrosive salts jointly shortened its protective lifespan. Subsequent Cr2O3 spalling enabled deeper salt penetration, inducing grain boundary embrittlement and accelerated substrate degradation.
AB - The hot corrosion behavior of a Ni-based superalloy was investigated under tensile stresses of 0, 60, and 120 MPa at 750 °C using XRD, OM, SEM, and EDS. The corrosion medium consisted of a 75 % Na2SO4–25 % NaCl salt mixture. The influence of tensile stress on oxide film microstructure, elemental diffusion, and corrosion kinetics was systematically analyzed. Results revealed that tensile stress accelerated hot corrosion via two key mechanisms: (1) enhancing the bidirectional diffusion of Cr and S, and (2) degrading the oxide film's integrity. The thickness of Cr-depleted layers, which varied with applied stress, served as a quantitative indicator of corrosion kinetics. The corrosion process progressed through three distinct stages, corresponding to oxide film growth, cracking/spalling, and reformation. A synergistic degradation mechanism was proposed, combining stress and hot corrosion effects. Outward Cr diffusion initially formed a protective Cr2O3-rich layer, but tensile stress and corrosive salts jointly shortened its protective lifespan. Subsequent Cr2O3 spalling enabled deeper salt penetration, inducing grain boundary embrittlement and accelerated substrate degradation.
KW - Corrosion kinetics model
KW - Cr depletion layer
KW - Hot corrosion mechanism
KW - Ni-based superalloy
KW - Stress-medium synergy effect
UR - https://www.scopus.com/pages/publications/105017569809
U2 - 10.1016/j.engfailanal.2025.110187
DO - 10.1016/j.engfailanal.2025.110187
M3 - 文章
AN - SCOPUS:105017569809
SN - 1350-6307
VL - 182
JO - Engineering Failure Analysis
JF - Engineering Failure Analysis
M1 - 110187
ER -