Hostname: page-component-7bb8b95d7b-fmk2r Total loading time: 0 Render date: 2024-09-28T06:15:33.039Z Has data issue: false hasContentIssue false

Combustion Synthesis of Ni-Ti-X Shape Memory Alloys

Published online by Cambridge University Press:  25 February 2011

John J. Moore
Affiliation:
Department of Metallurgical and Materials Engineering, Colorado School of Mines, Golden, Colorado 80401
Ru Chun Yi
Affiliation:
Department of Materials Science and Engineering, McMaster University, Hamilton, Canada ON L8S 4L8
Get access

Abstract

Combustion synthesis is an energetically favorable new method of producing Ni-Ti series shape memory alloys (SMA′s). The ΔH°f,,298/Cp298 ratio plays a key role, especially if a liquid product is required. Solidified TiNi SMA's were hot rolled into plates exhibiting the shape memory effect. Ms transition temperatures can be controlled from -78 to 460°C by substituting Fe or Pd for Ni.

Type
Research Article
Copyright
Copyright © Materials Research Society 1992

Access options

Get access to the full version of this content by using one of the access options below. (Log in options will check for institutional or personal access. Content may require purchase if you do not have access.)

References

1. Wayman, C.M., JOM (June 1980), p. 129.Google Scholar
2. Kalima, K. and Sohama, Y., J.Jpn. Soc. Powder Metall., 29 (1982), p. 127.Google Scholar
3. Igharo, M. and Wood, J. V., Powder Metall., 28 (1985), p. 131.Google Scholar
4. Duerig, T.W., Albrecht, J. and Gessinger, G.H., JOM (Dec. 1982), p. 14.Google Scholar
5. Bratchikov, A.D. et al. , Sov. Powd. Metall. Met. Ceram., 19 (1980), p. 5 CrossRefGoogle Scholar
6. Itin, V.I. et al. , Sov. Powd. Metall. Met. Ceram., 22 (1983), p. 156.Google Scholar
7. Khachin, V.N. et al. , (Soviet) All Union Institute of Scientific Information (1980), p. 3370.Google Scholar
8. Yi, H.C. and Moore, J.J., Scripta Metall., 22 (1988), p. 1989.CrossRefGoogle Scholar
9. Yi, H.C. and Moore, J.J., J. Mater. Sci., 24 (1989), pp. 3449-3455 (part one), 3456-3462 (part two).Google Scholar
10. Yi, H.C. and Moore, J.J., JOM (August 1990), p. 31.Google Scholar
11. Eckelmeyer, K.H., Scripta Metall. 10 (1976), p. 667.Google Scholar
12. Donkersloot, H.C. and Vucht, J.H.N. Van, J. Less-Common Met., 20 (1970), p. 83.Google Scholar
13. Yi, H.C. and Moore, J.J., to be published in J Mat. Sci..Google Scholar
14. Tuominen, S.M. and Biermann, R.J., JOM (1988, Feb.), p. 32.Google Scholar
15. Yi, H.C., Moore, J.J. and Petric, A., to be published in Met. Trans A.Google Scholar
16. Wany, F.E., J. Appl. Phys., 38 (1967), p. 822.Google Scholar
17. Miederma, A.R., deChatel, P.F. and deBoer, F.R., Physica, 100B (1980), p. 1.Google Scholar