Breakdown mechanism of γ-Al2O3 on Ni2Al3 coatings exposed in a biomass fired power plant
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J. Hald | M. Montgomery | K. Dahl | F. Grumsen | T. Christiansen | D. Wu
[1] Mahesh B. Venkataraman,et al. High Temperature Corrosion and Oxidation of Metals , 2019, Metals.
[2] J. Hald,et al. Corrosion behaviour of Ni and nickel aluminide coatings exposed in a biomass fired power plant for two years , 2019, Surface and Coatings Technology.
[3] I. Jung,et al. Thermodynamic modeling of the K2O-Al2O3 and K2O-MgO-Al2O3 systems with emphasis on β- and βʹʹ-aluminas , 2018, Journal of the European Ceramic Society.
[4] J. Hald,et al. Microstructural investigations of Ni and Ni2Al3 coatings exposed in biomass power plants , 2018 .
[5] K. Dahl,et al. Characterization of pack cemented Ni2Al3 coating exposed to KCl(s) induced corrosion at 600 °C , 2018 .
[6] Nan Li,et al. Oxide Morphology of a FeCrAl Alloy, Kanthal APMT, Following Extended Aging in Air at 300 °C to 600 °C , 2018, Metallurgical and Materials Transactions A.
[7] J. Hald,et al. Effects of Different Fuel Specifications and Operation Conditions on the Performance of Coated and Uncoated Superheater Tubes in Two Different Biomass-Fired Boilers , 2018 .
[8] F. Frandsen,et al. Influence of Preoxidation on High-Temperature Corrosion of a FeCrAl Alloy Under Conditions Relevant to Biomass Firing , 2018, Oxidation of Metals.
[9] S. Joshi,et al. Chlorine-induced high temperature corrosion of HVAF-sprayed Ni-based alumina and chromia forming coatings , 2017 .
[10] M. Galetz,et al. Kinetics of volatilization of high temperature corrosion products and its application to chlorine corrosion , 2017 .
[11] K. Dahl,et al. Application of aluminum diffusion coatings to mitigate the KCl‐induced high‐temperature corrosion , 2017 .
[12] N. Israelsson,et al. Cyclic Corrosion and Chlorination of an FeCrAl Alloy in the Presence of KCl , 2015, Oxidation of Metals.
[13] Yu Cao,et al. Mitigation of Fireside Corrosion in Power Plants: The Combined Effect of Sulfur Dioxide and Potassium Chloride on the Corrosion of a FeCrAl Alloy , 2014 .
[14] J. Svensson,et al. Mitigation of Fireside Corrosion of Stainless Steel in Power Plants: A Laboratory Study of the Influences of SO2 and KCl on Initial Stages of Corrosion , 2014 .
[15] J. Svensson,et al. Microstructural Investigation of the HCl-Induced Corrosion of the Austenitic Alloy 310S (52Fe26Cr19Ni) at 500 °C , 2014, Oxidation of Metals.
[16] R. Withers,et al. Superstructure of Mullite-type KAl9O14 , 2013, Chemistry of materials : a publication of the American Chemical Society.
[17] U. Bexell,et al. The initial effect of KCl deposit on alumina scales characterized by ToF‐SIMS and AES , 2013 .
[18] Judith C. Yang,et al. γ-Al2O3 thin film formation via oxidation of β-NiAl(1 1 0) , 2011 .
[19] J. Svensson,et al. KCl-Induced High Temperature Corrosion of the Austenitic Stainless Steel 304L – The Influence of SO2 , 2011 .
[20] J. Svensson,et al. The influence of small amounts of KCl(s) on the high temperature corrosion of a Fe‐2.25Cr‐1Mo steel at 400 and 500°C , 2011 .
[21] J. Svensson,et al. An ESEM in situ investigation of initial stages of the KCl induced high temperature corrosion of a Fe–2.25Cr–1Mo steel at 400 °C , 2011 .
[22] J. Svensson,et al. The Effects of KCl, K2SO4 and K2CO3 on the High Temperature Corrosion of a 304-Type Austenitic Stainless Steel , 2011 .
[23] M. Hupa,et al. Laboratory Study of Corrosion of an Alumina Refractory by Molten Potassium Salts , 2010 .
[24] J. Svensson,et al. KCl-Induced Corrosion of a 304-type Austenitic Stainless Steel in O2 and in O2 + H2O Environment: The Influence of Temperature , 2009 .
[25] S. Cha,et al. Local reactions of KCl particles with iron, nickel and chromium surfaces , 2006 .
[26] Feng Liu,et al. Oxidation of FeCrAl alloys at 500–900°C in dry O2 , 2005, Materials and Corrosion.
[27] S. Shimada,et al. Corrosion behaviour of various model alloys with NaCl–KCl coating , 2005 .
[28] D. Brandon,et al. Metastable alumina polymorphs : Crystal structures and transition sequences , 2005 .
[29] C. Robelin,et al. Thermodynamic evaluation and optimization of the (NaCl + KCl + AlCl3) system , 2004 .
[30] Frans D. Tichelaar,et al. Growth kinetics and mechanisms of aluminum-oxide films formed by thermal oxidation of aluminum , 2002 .
[31] L. Höglund,et al. Thermo-Calc & DICTRA, computational tools for materials science , 2002 .
[32] R. Rapp,et al. Hot corrosion of materials: a fluxing mechanism? , 2002 .
[33] T. Ishitsuka,et al. Stability of protective oxide films in waste incineration environment—solubility measurement of oxides in molten chlorides , 2002 .
[34] Larry L. Baxter,et al. The implications of chlorine-associated corrosion on the operation of biomass-fired boilers , 2000 .
[35] E. Reese,et al. The effects of chlorides, hydrogen chloride, and sulfur dioxide in the oxidation of steels below deposits , 1995 .
[36] H. Grabke,et al. The oxidation behaviour of NiAl-I. Phase transformations in the alumina scale during oxidation of NiAl and NiAl-Cr alloys , 1992 .
[37] B. Pluijm,et al. Analytical Electron Microscopy and the Problem of Potassium Diffusion , 1988 .
[38] K. V. Anand,et al. Electrochemical properties of dielectric films of aluminium oxide deposited on silicon , 1976 .
[39] M. Hupa,et al. Effect of temperature gradient on composition and morphology of synthetic chlorine-containing biomass boiler deposits , 2016 .
[40] N. Israelsson,et al. In Situ ESEM Investigation of KCl-Induced Corrosion of a FeCrAl and a Model FeNiCrAl Alloy in Lab Air at 450°C , 2015 .