A Simple Iterative Method for Analysing Experimental Tracer Diffusivities in Concentrated Binary Alloys

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Defect and Diffusion Forum (Volumes 224-225)

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127-0

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December 2003

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© 2004 Trans Tech Publications Ltd. All Rights Reserved

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[1] A.D. Le Claire, Physical Chemistry- An Advanced Treatise, Vol. 10, Eyring, H., Henderson, D. and Jost, W. (eds. ) (Academic Press: New York) p.261 (1970).

Google Scholar

[2] N.L. Peterson, Diffusion in Solids – Recent Developments, Nowick, A.S. and Burton, J.J. (eds. ) (Academic Press: New York) p.115 (1975).

Google Scholar

[3] S.J. Rothman, Diffusion in Crystalline Solids, Murch, G.E. and Nowick, A.S. (eds. ) (Academic Press: Orlando, FL) p.1 (1984).

Google Scholar

[4] J.R. Manning, Diffusion Kinetics for Atoms in Crystals, (Van Nostrand-Reinhold, Princeton, New Jersey), (1968).

Google Scholar

[5] J.R. Manning, Phys. Rev. B, 4, 1111 (1971).

Google Scholar

[6] G. Montet, Phys. Rev. B, 7, 650 (1973).

Google Scholar

[7] I.V. Belova and G.E. Murch, Phil. Mag. A. 80, 1469 (2000).

Google Scholar

[8] I.V. Belova and G.E. Murch, Phil. Mag. A. 80, 599 (2000).

Google Scholar

[9] I.V. Belova and G.E. Murch, Phil. Mag. A. 81, 1749 (2001).

Google Scholar

[10] I.V. Belova and G.E. Murch, Phil. Mag. A. 80, 2365 (2000).

Google Scholar

[11] I.V. Belova and G.E. Murch, Phil. Mag. A, 83, 393 (2003).

Google Scholar

[12] P.C. Holdsworth and R.J. Elliott, Phil. Mag. A. 54, 601 (1968).

Google Scholar

[13] L.K. Moleko, A.R. Allnatt and E.L. Allnatt, Phil. Mag. A, 59, 141 (1989).

Google Scholar

[14] D.B. Butrymowicz, J.R. Manning and M.E. Read, Diffusion Rate Data and Mass Transport Phenomena for Copper Systems, INCRA Monograph V, ( Natl. Bur. Stds.: Washington, DC), (1977).

Google Scholar

[15] G.B. Fedorov, E.A. Smirnov and F.I. Zhomov, Metall. Metalloved. Chist. Met., 7, 124 (1968).

Google Scholar

[16] I.N. Frantsevich, D.F. Kalinovich, I.I. Kovenskii and M.D. Smolin, J. Phys. Chem. Solids, 30, 947 (1969).

Google Scholar

[17] W.C. Mallard, A.B. Gardner, R.F. Bass and L.M. Slifkin, Phys. Rev. 129, 617 (1963).

Google Scholar

[18] B. Million, J. Ruzhichkova, J. Velisek and J. Vrestal, J. Mater. Sci. Eng. 50, 43 (1981).

Google Scholar

[19] B. Million and J. Kuchera, Acta Metall. 17, 339 (1969).

Google Scholar

[20] J. Ruzhichkova and B. Million, J. Mater. Sci. Eng. 50, 59 (1981).

Google Scholar

[21] D. Dehaunay, A.M. Huntz and P. Lacombe, Scr. Metall., 13, 419 (1979).

Google Scholar

[22] K. Monma, H. Suto and H. Oikawa, Nippon Kinzoku Gakkaishi 28, 192 (1964).

Google Scholar

[23] J. Fillon and D. Calais, J. Phys. Chem. Solids, 38, 81 (1977).

Google Scholar

[24] H.A. Resing and N.H. Nachtrieb, V. Nerses, J. Phys. Chem. Solids, 21, 40 (1961).

Google Scholar

[25] A.E. Pontau and D. Lazarus, Phys. Rev. 19, 4027 (1979).

Google Scholar

[26] I.N. Frantsevich, D.F. Kalinovich, I.I. Kovenskii and M.D. Smolin, Proc. Europhysics Conf., Lodding, A. and Agarwall, T. (eds), Verlag Z. Naturforsch, p.100 (1971).

Google Scholar

[27] K. Nohara and K. Hirano, J. Jpn. Inst. Met., 37, 51 (1973).

Google Scholar