http://repository.iitr.ac.in/handle/123456789/24088
Title: | Defect-dependent nitride surface layer development upon nitriding of Fe-1 at.% Mo alloy |
Authors: | Selg H. Bischoff E. Bernstein I. Woehrle T. Meka, Sai Ramudu Schacherl R.E. Waldenmaier T. Mittemeijer E.J. |
Published in: | Philosophical Magazine |
Abstract: | Upon nitriding of binary Fe-1 at.% Mo alloy in a NH3/H 2 gas mixture under conditions (thermodynamically) allowing γ′-Fe4N1-x compound layer growth (nitriding potential: 0.7 atm-1/2 at 753 K (480 °C) - 823 K (550 °C)), a strong dependency of the morphology of the formed compound layer on the defect density of the specimen was observed. Nitriding of cold-rolled Fe-1 at.% Mo specimens leads to the formation of a closed compound layer of approximately constant thickness, comparable to nitriding of pure iron. Within the compound layer, that is, in the near-surface region, Mo nitrides are present. The growth of the compound layer could be described by a modified parabolic growth law leading to an activation energy comparable to literature data for the activation energy of growth of a γ′-Fe4N1-x layer on pure iron. Upon low temperature nitriding (i.e. ≤793 K (520 °C)) of recrystallized Fe-1 at.% Mo specimens, an irregular, needle-like morphology of γ′-Fe4N1-x nucleated at the surface occurs. This γ′ iron nitride has an orientation relationship (OR) with the matrix close to the Nishiyama-Wassermann OR. The different morphologies of the formed compound layer can be interpreted as consequences of the ease or difficulty of precipitation of Mo as nitride as function of the defect density. © 2013 Copyright Taylor and Francis Group, LLC. |
Citation: | Philosophical Magazine, 93(17): 2133-2160 |
URI: | https://doi.org/10.1080/14786435.2013.765983 http://repository.iitr.ac.in/handle/123456789/24088 |
Issue Date: | 2013 |
Keywords: | binary Fe-1 at.% Mo alloys gas nitriding kinetics morphology nitride layer development |
ISSN: | 14786435 |
Author Scopus IDs: | 55256825500 16192908600 55600046700 36906169200 24503463800 6506515029 55599852000 35565640800 |
Author Affiliations: | Selg, H., Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany, Robert Bosch GmbH, Corporate Sector Research and Advance Engineering Materials and Process Engineering Metals, P.O. Box 30 02 40, 70442 Stuttgart, Germany Bischoff, E., Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany Bernstein, I., Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany Woehrle, T., Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany Meka, S.R., Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany Schacherl, R.E., Institute for Materials Science, University of Stuttgart, Heisenberg strasse 3, 70569 Stuttgart, Germany Waldenmaier, T., Robert Bosch GmbH, Corporate Sector Research and Advance Engineering Materials and Process Engineering Metals, P.O. Box 30 02 40, 70442 Stuttgart, Germany Mittemeijer, E.J., Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany, Institute for Materials Science, University of Stuttgart, Heisenberg strasse 3, 70569 Stuttgart, Germany |
Corresponding Author: | Selg, H.; Max Planck Institute for Intelligent Systems (Formerly Max Planck Institute for Metals Research), Heisenberg strasse 3, 70569, Stuttgart, Germany; email: s.meka@is.mpg.de |
Appears in Collections: | Journal Publications [MT] |
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