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The Yield Stress Anomaly in Fe-Al Alloys: The Role of the Local Climb Locking Mechanism

Published online by Cambridge University Press:  22 February 2011

David G. Morris
Affiliation:
Institute of Structural Metallurgy, University of Neuchâtel, 2000 Neuchâtel, Switzerland.
David Peguiron
Affiliation:
Institute of Structural Metallurgy, University of Neuchâtel, 2000 Neuchâtel, Switzerland.
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Abstract

A detailed examination of the variation of yield stress with temperature in an Fe3Al alloy shows a maximum at a temperature of about 500°C, slightly below the critical temperature for loss of DO3 order. At this temperature the dislocations present in the material change from being <111= superdislocations separated by APB to being single dislocations with Burgers vector <100=. At slightly lower temperatures the superdislocations become pinned by a local climb process involving point defect transfer between the partial dislocations.

Analysis of the forces between the dislocations which induce the local climb locking process allows an estimation of the role which will be played by variations in composition of the Fe-Al alloy considered, changes in deformation rate and orientation of the applied stress.

Examination of data available in the literature shows that each of the three aspects discussed, namely the influence of variations in ordered state, in Al content over the range 25% to 50%, or additions of alloying elements such as Si, straining at very fast or at slow rates, and stressing along different crystallographic axes, is completely consistent with the model proposed.

Type
Research Article
Copyright
Copyright © Materials Research Society 1995

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References

1. McKamey, C.G., Horton, J.A. and Liu, C.T., in High Temperature Ordered Intermetallic Allovs II. edited by Stoloff, N.S., Koch, C.C., Liu, C.T. and Izumi, O. (Mater. Res. Soc. Proc. 81, Pittsburgh, PA, 1987) pp. 321328.Google Scholar
2. Lawley, A., Vidoz, E.A. and Cahn, R.W., Acta Metall. 9, 287 (1961).Google Scholar
3. Schroer, W., Mecking, H. and Hartig, C., in Intermetallic Compounds, edited by Izumi, O. (JIMIS-6, Japan Inst, of Metals, Sendai, 1991) pp. 567571.Google Scholar
4. Hanada, S., Watanabe, S., Sato, T. and Izumi, O., Scripta Metall. 15, 1345 (1981).Google Scholar
5. Schroer, W., Hartig, C. and Mecking, H., Z. Metallkd. 84, 294 (1993).Google Scholar
6. Baker, I. and Gaydosh, D.J., Mater. Sci. and Eng. 96, 147 (1987).Google Scholar
7. Guo, J.T., Jin, O., Yin, W.M. and Wang, T.M., Scripta Metall. 29, 783 (1993).Google Scholar
8. Xiao, H. and Baker, I., Scripta Metall. 28, 1411 (1993).Google Scholar
9. Morris, D.G., Peguiron, D. and Nazmy, M., Phil. Mag., in press.Google Scholar
10. Morris, D.G., Phil. Mag., in press.Google Scholar
11. Veyssiere, P., Phil. Mag. A50, 189 (1984).Google Scholar
12. Saka, H. and Zhu, Y.M., Phil. Mag. A51, 629 (1985).Google Scholar
13. Zhu, Y.M. and Saka, H., Phil. Mag. A59, 661 (1989).Google Scholar
14. Umakoshi, Y. and Yamaguchi, M., Phil. Mag. A44, 711 (1981).Google Scholar
15. Munroe, P.R. and Baker, I., J. Mater. Sci. 24, 4246 (1989).Google Scholar