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The Role of Grain Boundaries in the Deformation and Failure of a Superplastic Al-Li Alloy

Published online by Cambridge University Press:  26 February 2011

Atul H. Chokshi
Affiliation:
Division of Materials Science and Engineering, Department of Mechanical Engineering, University of California, Davis, CA 95616
Amiya K. Mukherjee
Affiliation:
Division of Materials Science and Engineering, Department of Mechanical Engineering, University of California, Davis, CA 95616
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Abstract

The large elongations associated with superplasticity are observed only in materials with fine grain sizes. An Al-Li alloy processed thermomechanically to develop a fine grain size exhibits superplastic characteristics and large elongations to failure of up to ∼900%. Measurements at large elongations reveal that the grain boundary sliding contribution to superplastic deformation is ∼75%. Microstructural inspection of superplastically deformed specimens reveals also the occurrence of extensive cavitation.

Type
Research Article
Copyright
Copyright © Materials Research Society 1988

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References

REFERENCES

1. Wadsworth, J., Superplastic Forming, edited by Agrawal, S.P. (ASM, Metals Park, Ohio, 1985), p. 43.Google Scholar
2. Chokshi, A.H. and Langdon, T.G., Superplasticity, edited by Baudelet, B. and Suery, M. (Centre National de la Recherche Scientifique, Paris, 1985), p. 2.1.Google Scholar
3. Kashyap, B.P., Arieli, A. and Mukherjee, A.K., J. Mater. Sci. 20, 2661 (1985).CrossRefGoogle Scholar
4. Shariat, P., Vastava, R.B. and Langdon, T.G., Acta Metall. 30, 285 (1982).CrossRefGoogle Scholar
5. Lin, Z.-R., Chokshi, A.H. and Langdon, T.G., J. Mater. Sci., (in press).Google Scholar
6. Pilling, J. and Rildey, N., Res Mechanica 23, 31 (1988).Google Scholar
7. Chokshi, A.H. and Mukherjee, A.K., Superplasticity in Aerospace, edited by McNelley, T.R. and Heikkenen, C.H. (TMS-AIME, Warrendale, PA), (in press).Google Scholar
8. Chokshi, A.H. and Langdon, T.G., Acta Metall. 35, 1089 (1987).CrossRefGoogle Scholar
9. Chokshi, A.H., Wadsworth, J. and Mukherjee, A.K., Scripta Metall. 21, 1347 (1987).CrossRefGoogle Scholar
10. Woodford, D.A., ASM Trans. 62, 291 (1969).Google Scholar
11. Chokshi, A.H. and Mukherjee, A.K., Proceedings of a conference on Superplasticity and Superplastic Forming (Washington), (in press).Google Scholar
12. Mohamed, F.A., Ahmed, M.M.I. and Langdon, T.G., Metall. Trans. 8A, 933 (1977).CrossRefGoogle Scholar
13. Livesey, D.W. and Ridley, N., J. Mater. Sci. 17, 2257 (1982).CrossRefGoogle Scholar
14. Chokshi, A.H. and Mukherjee, A.K., Mater. Sci. Engng., (in press).Google Scholar