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Deformation of Polysynthetically Twinned (PST) TiAl Crystals at High Strain Rate and High Temperature

Published online by Cambridge University Press:  15 February 2011

Zhe Jin
Affiliation:
Los Alamos National Laboratory, Materials Science and Technology Division, Los Alamos, NM 87545, USA
George T. Gray III
Affiliation:
Los Alamos National Laboratory, Materials Science and Technology Division, Los Alamos, NM 87545, USA
Masaharu Yamaguchi
Affiliation:
Kyoto University, Department of Metal Science and Technology, Sakyo-ku, Kyoto 606, Japan
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Abstract

Deformation microstructures in a 45°<321> oriented (the lamellar interface was tilted 45° from the loading axis about the <321> direction in the lamellar interface) poly synthetically twinned (PST) TiAl crystal deformed in compression at 3000 s-1 and 800 °C was studied. Deformation of this PST crystal is characterized as follows: 1) Deformation of domains [III] and [IV] is dominated by 1/6 [112] parallel twinning (twinning parallel to lamellar interfaces). Ordinary dislocations observed in these domains are found to be a complementary deformation mode. 2) Deformation of domains [II], [V] and [VI] is controlled by a 1/2<110] ordinary dislocation slip. Complementary deformation modes in these domains are ordinary dislocation slip, superdislocation slip and cross-twinning. 3) Domain [I] is not deformed after the specimen deforms up to ∼7% strain.

Type
Research Article
Copyright
Copyright © Materials Research Society 1997

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References

REFERENCES

1. Fujiwara, T., Nakamura, A., Hosomi, M., Nishitani, S.R., Shirai, Y. and Yamaguchi, M., Phil. Mag. A, 61, 591 (1990).Google Scholar
2. Inui, H., Nakamura, A., Oh, M.H. and Yamaguchi, M., Phil. Mag. A, 66, 557 (1992).Google Scholar
3. Inui, H., Oh, M.H., Nakamura, A. and Yamaguchi, M., Acta Metall., 40, 3095 (1992).Google Scholar
4. Umakoshi, Y., Nakano, T. and Yamane, T., Mater. Sci. Eng., A152, 81 (1992).Google Scholar
5. Beaven, P.A., Appel, F., Dogan, B. and Wagner, R., Ordered Intermetallics-Physical Metallurgy and Mechanical Behavior, edited by Liu, C.T., Cahn, R.W. and Sauthoff, G., Kluwer Academic Publishers, Dordrecht (1992). p. 413.Google Scholar
6. Umakoshi, Y. and Nakano, T., Acta Metall., 41, 1155 (1993).Google Scholar
7. Appel, F. and Wagner, R., Defect-Interface Interactions, edited by Kvam, E.P., King, A.H., Mills, M.J., Sands, T.D. and Vitek, V. (Mater. Res. Soc. Proc. 319, Pittsburgh, PA 1994), p. 279.Google Scholar
8. Inui, H., Kishida, K., Misaki, M., Kobayashi, M., Shirai, Y. and Yamaguchi, M., Phil. Mag. A, 72, 1609 (1995).Google Scholar
9. Yao, K.-F., Inui, H., Kishida, K. and Yamaguchi, M., Acta Metall., 43, 1075 (1995).Google Scholar
10. Yasuda, H.Y., Nakano, T. and Umakoshi, Y., Phil. Mag. A, 71, 127 (1995).Google Scholar
11. Yasuda, H.Y., Nakano, T. and Umakoshi, Y., Phil. Mag. A, 73, 1035 (1996).Google Scholar
12. Yasuda, H.Y., Nakano, T. and Umakoshi, Y., Phil. Mag. A, 73, 1053 (1996).Google Scholar
13. Jin, Zhe, Gray, George T. III and Yamaguchi, Masaharu, Acta Metall., submitted, 1996.Google Scholar