338
Views
0
CrossRef citations to date
0
Altmetric
Research Article

Effects of salt and ash deposits on corrosion behaviour of Ni-25Cr in Ar-60CO2-20H2O gas at 650 oC

, , , &
Pages 260-271 | Received 27 Mar 2023, Accepted 25 May 2023, Published online: 31 May 2023

References

  • Mintzer IM, Energy, greenhouse gases, and climate change. Annual review of energy. Annual Review of Energy. 1990;15(1):513–550.
  • Ritchie H, Roser M, Rosado P, CO₂ and greenhouse gas emissions. Our world in data, 2020.
  • Jordal K, Anheden M, Yan J, et al. Oxyfuel combustion for coal-fired power generation with CO2 capture—opportunities and challenges. Greenhouse Gas Control Technologies. 2005;7:201–209.
  • Choe H, Dunand DC. Mechanical properties of oxidation-resistant Ni–Cr foams. Mater Sci Eng A. 2004;384(1–2):184–193.
  • Zeng Z, Natesan K, Cai Z, et al. Effects of chlorine in ash on the corrosion performance of Ni-based alloys in a simulated oxy-fuel environment. Energy Fuels. 2018;32(10):10502–10512.
  • Zeng Z, Natesan K, Cai Z, et al. Effect of coal ash on the performance of alloys in simulated oxy-fuel environments. Fuel. 2014;117:133–145.
  • Okoro SC, Montgomery M, Frandsen FJ, et al. Time and temperature effects on alkali chloride induced high temperature corrosion of superheaters during biomass firing. Energy Fuels. 2018;32(7):7991–7999.
  • McNallan M, Liang W, Oh J, et al. Morphology of corrosion products formed on cobalt and nickel in argon-oxygen-chlorine mixtures at 1000 K. Oxid Met. 1982;17(5–6):371–389.
  • Grabke H, Reese E, Spiegel M. The effects of chlorides, hydrogen chloride, and sulfur dioxide in the oxidation of steels below deposits. Corros Sci. 1995;37(7):1023–1043.
  • Cai Y, Nguyen TD, Zhang J, et al. Corrosion behaviour of Fe-based austenitic and Ni-based alloys in Wet CO2 gas with and without chloride deposits at 650° C. Corros Sci. 2023;210:110822.
  • Pettit F. Hot corrosion of metals and alloys. Oxid Met. 2011;76(1):1–21.
  • Xie Y, Cai Y, Zhang J, et al. Effects of sulphate deposits on corrosion behaviour of Ni-base alloys in wet CO2 gas at 750° C. Corros Sci. 2021;181:109227.
  • Koutsoyiannis D. Clausius–Clapeyron equation and saturation vapour pressure: simple theory reconciled with practice. Eur J Phys. 2012;33(2):295.
  • FactSage 8.1 Thermochemical Software and Database (accessed July 2022). 2022.
  • Levin EM, McMurdie HF, Reser MK. Phase diagrams for ceramists: 1975 supplement. Columbus, Ohio: American Ceramic Society. 1975.
  • Xie Y, Cai Y, Zhang J, et al. Effects of Sulphate Deposits on Corrosion Behaviour of Fe-Based Alloys in Wet CO2 Gas at 750° C. Oxid Met. 2021;95(1–2):23–43.
  • Jiang C, Xie Y, Kong C, et al. Corrosion behaviour of Ni-Cr alloys in mixed oxidising gases at 650 °C. Corros Sci. 2020;174:108801.
  • Xie Y, Zhang J, Young DJ. Water vapour effects on corrosion of Ni-Cr alloys in CO2 gas at 650 °C. Corros Sci. 2018;136:311–325.
  • Cai Y, Nguyen TD, Zhang J, et al. Corrosion behaviour of Fe-25Cr alloy in wet CO2 gas at 650° C: effects of chloride deposits and Si+ Mn alloying addition. Corros Sci. 2022;195:110001.
  • Aye KK, Nguyen TD, Zhang J, et al. Effect of silicon on corrosion of Fe-20Cr and Fe-20Cr-20Ni alloys in wet CO2 with and without HCl at 650° C. Corros Sci. 2021;179:109096.
  • Cai Y, Effects of chloride deposit and coal ash on high-temperature corrosion of chromia-forming alloys. 2023, PhD Thesis, School of Materials Science and Engineering, Faculty of Science, University of New South Wales. UNSW. https://doi.org/10.26190/unsworks/24814.
  • Gheno T, Gleeson B. On the Hot Corrosion of Nickel at 700 °C. Oxid Met. 2015;84(5):567–584.
  • Grégoire B, Montero X, Galetz MC, et al. Mechanisms of hot corrosion of pure nickel at 700°C: influence of testing conditions. Corros Sci. 2018;141:211–220.
  • Young DJ. High Temperature Oxidation and Corrosion of Metals, 2nd. Elsevier: 2016. doi:10.1016/B978-0-08-100101-1.00001-7.
  • Zheng XG, Young DJ. High temperature corrosion of pure chromium in CO-CO2-SO2-N2 atmospheres. Corros Sci. 1994;36(12):1999–2015.
  • Soltanattar S, Nowakowski P, Bonifacio CS, et al. Use of microanalysis to better understand the high-temperature corrosion behavior of chromium exposed to multi-oxidant environments. Oxid Met. 2019;91(1–2):11–31.