Corrosion mechanism of K411 superalloy in sulfur-containing environment: sulfidation promoting internal nitridation
Author:
Affiliation:
1. Key Lab for Anisotropy and Texture of Materials, Ministry of Education , Northeastern University , Shenyang 110819 , P.R. China
2. Institute of Metal Research , Chinese Academy of Sciences , Shenyang 110016 , P.R. China
Abstract
Funder
National Science and Technology Major Project
Advanced Material Systems and Database for Gas Turbine
Publisher
Walter de Gruyter GmbH
Link
https://www.degruyter.com/document/doi/10.1515/corrrev-2024-0005/pdf
Reference44 articles.
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2. Caron, P. and Khan, T. (1999). Evolution of Ni-based superalloys for single crystal gas turbine blade applications. Aerosp. Sci. Technol. 3: 513–523, https://doi.org/10.1016/s1270-9638(99)00108-x.
3. Cervellon, A., Ormastroni, L.M.B., Hervier, Z., Pollock, T.M., Pedraza, F., and Cormier, J. (2021). Damage mechanisms during very high cycle fatigue of a coated and grit-blasted Ni-based single-crystal superalloy. Int. J. Fatigue. 142: 105962, https://doi.org/10.1016/j.ijfatigue.2020.105962.
4. Chang, S.Y., Krupp, U., and Christ, H.J. (2001). Formation and compensation of internal stresses during internal nitridation of nickel-base alloys. Mater. Sci. Eng. A-Struct. Mater. Prop. Microstruct. Process. 301: 196–206, https://doi.org/10.1016/s0921-5093(00)01670-1.
5. Cruchley, S., Evans, H.E., Taylor, M.P., Hardy, M.C., and Stekovic, S. (2013). Chromia layer growth on a Ni-based superalloy: sub-parabolic kinetics and the role of titanium. Corros. Sci. 75: 58–66, https://doi.org/10.1016/j.corsci.2013.05.016.
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