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Ductility and Strength in Mo Modified TiAl

Published online by Cambridge University Press:  26 February 2011

T. Maeda
Affiliation:
Advanced Technology Research Laboratories,Sumitomo Metal Industries, Ltd.,Amagasaki 660,Japan
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Abstract

An investigation has been made on the effect of ternary additions of Mo and other elements on the room temperature tensile ductility and high temperature strength, including creep rupture strength in TiAl based alloys. Mo modified Ti-rich TiAl in an annealed condition exhibited higher tensile ductility at room temperature than other well-known Cr or Mn modified alloys, this resulting from the refinment of mean grain size in the duplex structure of lamellar (γ+α2) and single phase (γ) rather than the crystalline tetragonality of the γ phase. Moreover, creep strength in as cast Ti-rich TiAl is improved with the addition of Mo, and lowered with the addition of Mn. These results suggest that Mo modified Ti-rich TiAl can enhance, the potential of TiAl as a high temperature material more than other ternary modified TiAl.

Type
Research Article
Copyright
Copyright © Materials Research Society 1991

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References

REFERENCES

1. Yamaguchi, M., Nishitani, S.R. and Shirai, Y., in High Temperature Aluminides and Intermetallics, edited by Whang, S.H., Liu, C.T., Pope, D.P. and Stieger, J.O. (TMS, Warrendale, PA 1990), pp. 63.Google Scholar
2. Blackburn, M.J. and Smith, M.P., U.S.Patent No. 4 294 615 (13 October 1984).Google Scholar
3. Hashimoto, K., Dohi, H., Kasahara, K. and Tujimoto, T., J. Japan Inst. Met., 52, 816 (1988).Google Scholar
4. Tujimoto, T. and Hashimoto, K. in High Temperature Ordered Intermetallics III, edited by Liu, C.T., Taub, A.I., Stoloff, N.S. and Koch, C.C. (Mater. Res. Soc. Proc. 133, Pittsburgh, PA 1989) pp. 391.Google Scholar
5. Whang, S.H. and Hahn, Y., High Temperature Ordered Intermetallics III, p. 687.Google Scholar
6. Kawabata, T., Tamura, T. and Izumi, O., High Temperature Ordered Intermetallics III, p. 329.Google Scholar
7. Martin, P.L., Lipsitt, H.A., Nuhfer, N.T. and Williams, J.C. in Titanium '80 Science and Technology edited by Kimura, H. and Izumi, O. (TES-AIME, Warrendale, PA 1981) pp. 1245.Google Scholar
8. Kim, Y.W., Ref. 1, 405.Google Scholar
9. Lipsitt, H.A., Shechtman, D. and Schafrik, R.E., Met. Trans. 6A, 1991 (1975).Google Scholar
10. Schulson, E.M. and Baker, D.R. : Scripta Met., 17, 519 (1983).Google Scholar
11. Maeda, T., Okada, M., Shida, Y. and Nakanishi, M., Collected Abstracts for Fall Meeting of Japan Inst. Met., (Japan Inst. Met.) 238 (1989).Google Scholar
12. Martin, P.L., Mendaratta, M.G. and Lipsitt, H.A., Met. Trans. 14A, 2170 (1975).Google Scholar
13. Schuon, S.R. and Druschitz, A.P., J.Metals 39, March (1987), 36.Google Scholar
14. Shong, D.S. and Kim, Y-W, Scripta Met. 23, 257 (1987).Google Scholar
15. Hall, E.L. and Huang, S.C., Acta Metall. 38, 539 (1990).Google Scholar