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Please use this identifier to cite or link to this item: http://repository.iitr.ac.in/handle/123456789/24094
Title: Nitride formation and excess nitrogen uptake after nitriding ferritic Fe-Ti-Cr alloys
Authors: Jung K.S.
Meka, Sai Ramudu
Schacherl R.E.
Bischoff E.
Mittemeijer E.J.
Published in: Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science
Abstract: The microstructure of the nitrided zone of Fe-Ti-Cr alloys, containing a total of 0.30 at. pct (Ti+Cr) alloying elements, with varying Ti/Cr atomic ratio (0.45, 0.87, and 1.90), was investigated by X-ray diffraction (XRD) and transmission electron microscopy (TEM). The stable TiN and CrN nitrides did not precipitate after nitriding. Instead, ultrafine, metastable, mixed Ti 1-xCr xN nitride precipitates developed in the nitrided zone: The precipitates were of platelet morphology (length ≤30 nm and thickness ≤3 nm) and of cubic, rock-salt, crystal-structure type. The misfit strain around the nitride platelets in the ferrite matrix increases with increasing Ti/Cr atomic ratio. As a consequence, most pronouncedly for the highest Ti/Cr atomic ratio, a tetragonally distorted ferrite matrix surrounds the precipitates, as evidenced both by XRD and TEM. The amount of nitrogen taken up was determined quantitatively by measuring the so-called nitrogen-absorption isotherms. It follows that the absorbed amount of so-called excess nitrogen dissolved in the matrix and adsorbed at the nitride-platelet faces increases distinctly with increasing Ti/Cr atomic ratio. The results were discussed in terms of the dependence of misfit strain on the Ti/Cr atomic ratio and the higher chemical affinity of Ti for N than of Cr for N. © The Minerals, Metals and Materials Society and ASM International 2011.
Citation: Metallurgical and Materials Transactions A: Physical Metallurgy and Materials Science, 43(3): 934-944
URI: https://doi.org/10.1007/s11661-011-0939-x
http://repository.iitr.ac.in/handle/123456789/24094
Issue Date: 2012
Keywords: Atomic ratio
Chemical affinities
Excess nitrogen
Ferrite matrix
Misfit strains
Nitride formation
Nitride platelets
Nitride precipitates
Nitrided
Platelet morphology
Rock salt
Transmission electron microscopy (TEM)
Ultrafine
XRD
Alloying elements
Atoms
Chromium alloys
Crystal structure
Ferrite
Ferritic steel
Nitriding
Nitrogen
Platelets
Precipitates
Titanium nitride
Transmission electron microscopy
X ray diffraction
Chromium
ISSN: 10735623
Author Scopus IDs: 34869607000
24503463800
6506515029
16192908600
35565640800
Author Affiliations: Jung, K.S., Samsung Corning Precision Materials, Myeongam-ri, Tangjeong-myeon, Chungnam 336-725, South Korea
Meka, S.R., Max Planck Institute for Intelligent Systems, United States
Schacherl, R.E., Institute for Materials Science, University of Stuttgart, Stuttgart 70569, Germany
Bischoff, E., Max Planck Institute for Intelligent Systems, United States
Mittemeijer, E.J., Institute for Materials Science, University of Stuttgart, Germany
Corresponding Author: Jung, K.S.; Samsung Corning Precision Materials, Myeongam-ri, Tangjeong-myeon, Chungnam 336-725, South Korea; email: k.s.jung@is.mpg.de
Appears in Collections:Journal Publications [MT]

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