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Mechanisms of Phase Formation During Milling in the Ternary Immiscible AG-CU-FE System

Published online by Cambridge University Press:  15 February 2011

T. Klassen
Affiliation:
Department of Materials Science and Engineering University of Illinois at Urbana-Champaign, Urbana, Illinois 61801
U. Herr
Affiliation:
Department of Materials Science and Engineering University of Illinois at Urbana-Champaign, Urbana, Illinois 61801
R.S. Averback
Affiliation:
Department of Materials Science and Engineering University of Illinois at Urbana-Champaign, Urbana, Illinois 61801
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Abstract

Powder blends consisting of prealloyed FCC Ag-Cu solid solutions and elemental Fe powders were ball milled in overall compositions of Ag25Cu50Fe25, andAg40Cu20Fe40. The phase evolution with milling time was investigated by x-ray diffraction and differential scanning calorimetry. For the sample with higher Cu concentration, a ternary FCC alloy phase was formed, while milling the other sample resulted in a two phase mixture consisting of a Ag-rich FCC and an Fe-rich BCC solid solution. About the same amount of enthalpy between 12 and 13 kJ/g-atom is stored in the final states for the two different compositions. Two models based on kinetic and energetic considerations will be discussed and compared to the results. The kinetic model is based on the competition between forced atomic motion during shearing, which is driving the system towards a homogeneous alloy, and thermally activated diffusion, which favors phase separation. For the energetic model, the energy balance is calculated and a phase transformation is expected, if the required energy can be stored in phase boundaries.

Type
Research Article
Copyright
Copyright © Materials Research Society 1996

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References

references

1. Koch, C.C., Mechanical Milling and Alloying, in Materials Science and Technology, Vol. 15, edited by Cahn, R.W., Haasen, P., and Kramer, E.J. (VCH, Weinheim, 1991), p. 193.Google Scholar
2. Bormann, R., in: Materials by Powder Technology (PTM93), ed. by Aldinger, F., DGM Informationsgesellschaft mbH, Oberursel, p. 247.Google Scholar
3. Koch, C.C., Mat. Trans. - JIM 36 (1995), 85.Google Scholar
4. Schwarz, R.B., Petrich, R.R., and Saw, C.K., J. Non-Cryst. Solids 76 (1985), 281.Google Scholar
5. Klassen, T., Oehring, M., and Bormann, R., J. Mater. Res. 9 (1994), 47.Google Scholar
6. Oehring, M., Klassen, T., and Bormann, R., J. Mater. Res. 8 (1993), 2819.Google Scholar
7. Klassen, T., Oehring, M., and Bormann, R., phys. stat. sol. (a) 131 (1992), 671.Google Scholar
8. Uenishi, K., Kobayashi, K.F., Ishihara, K.N., and Shingu, P.H., Mat. Sci. Eng. A 134 (1991), 1342.Google Scholar
9. Herr, U., and Samwer, K., in: Solid-State Transformations, ed. Johnson, W.C., Howe, J.W., Laughlin, D.E. and Soffa, W.A., TMS 14, Warrendale (1994), 1039.Google Scholar
10. Gente, C., Oehring, M., and Bormann, R., Phys. Rev. B 48 (1993), 13 244.Google Scholar
11. Ogino, Y., Yamasaki, T., Murayama, S., and Sakai, R., J. Non-Cryst. Solids 117/118 (1990), 737.Google Scholar
12. Uenishi, K., Kobayashi, K.F., Nasu, S., Hatano, H., Ishihara, K.N., and Shingu, P.H., Z. Metallkd. 83 (1992), 132.Google Scholar
13. Yavari, A.R., Desre, P.J., and Bonameur, T., Phys. Rev. Lett. 68 (1992), 2235.Google Scholar
14. Eckert, J., Holzer, J.C., Krill, C.E. III, and Johnson, W.L., J. Appl. Phys. 73 (1993), 2794.Google Scholar
15. Fukunaga, T., Nakamura, K., Suzuki, K., and Mizutani, U., J. Non-Cryst. Solids 117/118 (1990), 700.Google Scholar
16. Sakurai, K., Yamada, Y., Lee, C.H., Fukunaga, T., and Mizutani, U., Appl. Phys. Lett. 57 (1990), 2660; Mater. Sci. Eng. A 134 (1991), 1414.Google Scholar
17. Veltl, G., Scholz, B., and Kunze, H.-D., Mater. Sci. Eng. A 134 (1991), 1410.Google Scholar
18. Fukanaga, T., Mori, M., Inoue, K., and Mizutani, U., Mater. Sci. Eng. A 134 (1991), 863.Google Scholar
19. Sakurai, K., Mori, M., and Mizutani, U., Phys. Rev. B 46 (1992), 5711.Google Scholar
20. Gaffet, E., Louison, C., Harmelin, M., and Foudot, F., Mater. Sci. Eng. A 134 (1991), 1380.Google Scholar
21. Bellon, P., and Averback, R., Phys. Rev. Lett. 74 (1995), 1819.Google Scholar
22. Klassen, T., Herr, U., and Averback, R., 1995, unpublished.Google Scholar
23. Kuyama, J., Ishihara, K.N., and Shingu, P.H., Mater. Sci. Forum 88–90 (1992), 521.Google Scholar
24. Xu, J., Herr, U., Klassen, T., and Averback, R., unpublished.Google Scholar
25. Niessen, A.K., de Boer, F.R., Boom, R., de Chatel, P.F., Mattens, W.C.M., and Miedema, A.R., CALPHAD 7 (1983), 51.Google Scholar