The effect of alloying elements on oxide scale spallation of multicomponent Co-based superalloys
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[1] Ji-Cheng Zhao,et al. Effects of Ni, Cr and W on the microstructural stability of multicomponent CoNi-base superalloys studied using CALPHAD and diffusion-multiple approaches , 2021, Journal of Materials Science & Technology.
[2] Mingyue Chen,et al. Cyclic oxidation behavior of Al-Si coating on new γ′-strengthened cobalt-based superalloy: Experimental study and first-principles calculation , 2021 .
[3] Ang Li,et al. In situ oxidation analysis on Co-Al-W-Ti-Ta single-crystal alloy in an environmental TEM , 2020 .
[4] Weiguo Song,et al. Oxidation behavior of a novel nickel-based single crystal superalloy at elevated temperature , 2020 .
[5] T. Pollock,et al. Oxidation Behavior Across Composition Space Relevant to Co-based γ/γ′ Alloys , 2019, Metallurgical and Materials Transactions A.
[6] Yang Liu,et al. High temperature oxidation behaviour of γ′-strengthened Co-based superalloys with different Ni addition , 2019, Corrosion Science.
[7] S. Neumeier,et al. Influence of Co to Ni ratio in γ′-strengthened model alloys on oxidation resistance and the efficacy of the halogen effect at 900 °C , 2019, Corrosion Science.
[8] Xingtai Zhou,et al. Effects of tungsten content on the high-temperature oxidation behavior of Ni-xW-6Cr alloys , 2019, Corrosion Science.
[9] S. Forsik,et al. High-Temperature Oxidation Behavior of a Novel Co-Base Superalloy , 2018, Metallurgical and Materials Transactions A.
[10] S. Virtanen,et al. Early stages of scale formation during oxidation of γ/γ′ strengthened single crystal ternary Co-base superalloy at 900 °C , 2018 .
[11] T. Pollock,et al. Rapid Assessment of Oxidation Behavior in Co-Based γ/γ′ Alloys , 2018, Oxidation of Metals.
[12] Y. Yoo,et al. Effect of refractory elements and Al on the high temperature oxidation of Ni-base superalloys and modelling of their oxidation resistance , 2017 .
[13] Ze Zhang,et al. In-situ environmental TEM study of γ′-γ phase transformation induced by oxidation in a nickel-based single crystal superalloy , 2015 .
[14] T. Pollock,et al. L12-Strengthened Cobalt-Base Superalloys , 2015 .
[15] D. Dye,et al. Effect of alloying on the oxidation behaviour of Co–Al–W superalloys , 2014 .
[16] Y. Yoo,et al. The effects of the minor alloying elements Al, Si and Mn on the cyclic oxidation of Ni–Cr–W–Mo alloys , 2014 .
[17] D. Dye,et al. Alloying effects in polycrystalline γ′ strengthened Co-Al-W base alloys , 2014 .
[18] P. Schmuki,et al. The effect of grain boundaries on high temperature oxidation of new γ′-strengthened Co–Al–W–B superalloys , 2014 .
[19] S. Virtanen,et al. The effect of nickel and silicon addition on some oxidation properties of novel Co-based high temperature alloys , 2013 .
[20] H. Inui,et al. Creep deformation of single crystals of new Co–Al–W-based alloys with fcc/L12 two-phase microstructures , 2012 .
[21] R. Banerjee,et al. Solute partitioning and site preference in γ/γ′ cobalt-base alloys , 2012 .
[22] S. Virtanen,et al. Electrochemical characterisation of novel γ/γ′-strengthened Co-base superalloys , 2012 .
[23] S. Virtanen,et al. Effect of B and Cr on the high temperature oxidation behaviour of novel γ/γ′-strengthened Co-base superalloys , 2011 .
[24] J. Xiang,et al. The Oxidation of Co-5Al Alloys in 1 Atm of Pure O2 at 700 and 800 OC , 2011 .
[25] S. Neumeier,et al. High temperature oxidation of ?/?'-strengthened Co-base superalloys , 2011 .
[26] S. Neumeier,et al. Microstructure and creep strength of different γ/γ′-strengthened Co-base superalloy variants , 2010 .
[27] C. Jones,et al. The Role of the γ′ Precipitate Dispersion in Forming a Protective Scale on Ni-Based Superalloys at 750 °C , 2010 .
[28] Tresa M. Pollock,et al. New Co-based γ-γ′ high-temperature alloys , 2010 .
[29] K. Ishida,et al. Phase Equilibria and Microstructure on γ' Phase in Co-Ni-Al-W System , 2008 .
[30] C. Montero-Ocampo,et al. EIS Study of the Electrochemical Behavior of the Co-Cr-Mo Alloy in Borate Solutions , 2008 .
[31] K. Ishida,et al. Cobalt-Base High-Temperature Alloys , 2006, Science.
[32] T. Pollock,et al. Nickel-Based Superalloys for Advanced Turbine Engines: Chemistry, Microstructure and Properties , 2006 .
[33] S. Kwon,et al. Oxidation of Ni–W coatings at 700 and 800 °C in air , 2005 .
[34] I. Milošev,et al. Cobalt-based alloys for orthopaedic applications studied by electrochemical and XPS analysis , 2004, Journal of materials science. Materials in medicine.
[35] O. J. Kleppa,et al. Note on the enthalpies of formation, from the component oxides, of CoWO4 and NiWO4, determined by high-temperature direct synthesis calorimetry , 2001 .
[36] F. Stott,et al. The influence of alloying elements on the development and maintenance of protective scales , 1995 .
[37] J. Stringer,et al. The high-temperature oxidation resistance of Co-Al alloys , 1975 .
[38] P. Hancock. Mechanical Considerations of the Growth and Breakdown of Surface Oxide Films , 1970 .
[39] H. Uhlig,et al. Corrosion Behavior and Passivity of Nickel‐Chromium and Cobalt‐Chromium Alloys , 1960 .
[40] S. Virtanen,et al. Corrosion properties of novel γ′–strengthened Co-base superalloys , 2013 .
[41] J. Stringer,et al. The oxidation of cobalt—tungsten alloys , 1976 .
[42] J. Stringer,et al. The oxidation of nickel—tungsten alloys , 1976 .