Hostname: page-component-7479d7b7d-767nl Total loading time: 0 Render date: 2024-07-10T17:48:15.592Z Has data issue: false hasContentIssue false

The Structure and Properties of Grain Boundaries in Ni3Al

Published online by Cambridge University Press:  25 February 2011

M. J. Mills
Affiliation:
Sandia National Laboratories, Livermore, CA 94551–0969
S. H. Goods
Affiliation:
Sandia National Laboratories, Livermore, CA 94551–0969
S. M. Foiles
Affiliation:
Sandia National Laboratories, Livermore, CA 94551–0969
Get access

Abstract

The mechanical behavior of polycrystalline intermetallic compounds are often strongly influenced by the properties of the interfaces present. A classic example of this is the intergranular fracture exhibited by polycrystalline Ni3Al, and the dramatic increase in ductility upon the addition of small amounts of boron. It has been proposed that boron may promote the transmission of slip across grain boundaries by inducing the formation of a local region of compositional disorder. The results of experimental efforts to characterize the effect of boron on the structure and chemistry of these grain boundaries are summarized. Recent high resolution transmission electron microscopy studies using oriented bicrystals are described which indicate that there is no apparent change in the compositional ordering to within 0.5 nm from the boundary. These experimental results are compared with the results of atomistic calculations which have been used to examine the effect of stoichiometry and boron content on the energy and degree of ordering of these boundaries. The proposed mechanisms of intergranular fracture in Ni3Al are discussed based on this experimental and theoretical work.

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

REFERENCES

1. George, E. P., Pope, D. P., Fu, C. F. and Schneibel, J. H., Iron Steel Intstit. Jap. Inter., 31, 1063 (1991).Google Scholar
2. Stoloff, N. S. and Davies, R. G., Prog. Mat. Sci., 13, 1 (1966).Google Scholar
3. Takasugi, T., Nagashima, M. and Izumi, O., Acta Metall. Mater., 38, 747 (1990).Google Scholar
4. Aoki, K. and Izumi, O., Nippon Kinzaku Gakkaishi, 43, 1190 (1979).Google Scholar
5. Liu, C. T., White, C. L. and Horton, J. A., Acta Metall., 33, 213 (1985).CrossRefGoogle Scholar
6. Takeyama, M. and Liu, C. C., Acta Metall., 36, 1241 (1988).Google Scholar
7. Taub, A. I., Briant, C. L., Huang, S. C., Chang, K. M. and Jackson, M. R., Scripta Metall., 20, 129 (1986).CrossRefGoogle Scholar
8. Oliver, W. C. and White, C. L., MRS Proceedings, 81, 241 (1987).Google Scholar
9. Bond, G. M., Robertson, I. M. and Birnbaum, H. K., Acta Metall., 37, 1407 (1989).Google Scholar
10. Rice, J. R., The Effect of Hydrogen on the Behavior of Metals, AIME, New York, 455 (1976).Google Scholar
11. White, C. L., Padgett, R. A., Liu, C. T. and Yalisgrove, S. M., Scripta Metall., 18, 1417 (1984).Google Scholar
12. Baker, I. and Schulson, E. M., Scripta Metall., 23, 345 (1989).Google Scholar
13. Schulson, E. M., Weihs, T. P., Baker, I., and Horton, J. A., Acta Metall., 34, 1395 (1986).Google Scholar
14. Horton, J. A. and Miller, M. K., Acta Metall., 35, 133 (1987).Google Scholar
15. King, A. H. and Yoo, M. H., Scripta Met., 21, 1115 (1987).Google Scholar
16. Choudhury, A., White, C. L. and Brooks, C. R., Scripta Metall., 20, 1161 (1986).Google Scholar
17. Horton, J. A. and Miller, M. K., Acta Metall., 35, 133 (1987).Google Scholar
18. Sieloff, D. D., Brenner, S.S. and Burke, M. G., MRS Proceedings, 81, 87 (1987).CrossRefGoogle Scholar
19. Lin, T. L., Chen, D. and Lin, H., Acta Metall. Mater., 39, 523 (1991).CrossRefGoogle Scholar
20. Sieloff, D. N., Brenner, S. S. and Ming-Jian, H., MRS Proceedings, 133, 155 (1989).Google Scholar
21. Baker, I., Schulson, E. M. and Michael, J. R., Phil. Mag. B, 57, 379 (1988).Google Scholar
22. Horton, J. A., Miller, M. K., Liu, C. T., George, E. P. and Bentley, J., MRS Proceedings, 133, 89 (1989).Google Scholar
23. George, E. P., Liu, C. T. and Padgett, R. A., Scripta Metall., 23, 979 (1989).Google Scholar
24. Birnbaum, H. K. and Robertson, I. M., to be published.Google Scholar
25. Horton, J. A. and Liu, C. T., Scripta Metall., 33, 9213 (1990).Google Scholar
26. Baker, I. and Schulson, E. M., Scripta Metall., 23, 1883 (1989).CrossRefGoogle Scholar
27. Baker, I. and Schulson, E. M., Michael, J. R. and Pennycook, S. J., Phil. Mag B, 62, 659 (1990).Google Scholar
28. Horton, J. A., Liu, C. T. and Pennycook, S. J., MRS Proceedings, 213, 417 (1991).Google Scholar
29. Stadelmann, P., Ultramicroscopy, 21, 131 (1987).CrossRefGoogle Scholar
30. Choudhury, A., Whiteanil, C. L., Brooks, C. R., MRS Proceedings, 111, 261 (1988).Google Scholar
31. Mackenzie, R.A.D. and Sass, S.L., Scripta Met., 11, 1807 (1988).CrossRefGoogle Scholar
32. Kung, H., Rasmunsen, D. R. and Sass, S. L., Scripta Metall. Mater., 25, 1277 (1991).CrossRefGoogle Scholar
33. Krzanowski, J. E., Scripta Met., 23, 1219 (1989).CrossRefGoogle Scholar
34. Mills, M. J., Scripta Met., 23, 2061 (1989).Google Scholar
35. Lin, H. and Pope, D. P., MRS Proceedings, 213, 391 (1991).Google Scholar
36. Sutton, A. P., International Metals Reviews, 5, 29 (1984).Google Scholar
37. Mills, M. J., Goods, S. H., Foiles, S. M. and Whetstone, J. R., Scripta Metall. Mater., 25, 1283 (1991).Google Scholar
38. Brenner, S. S. and Ming-Jian, H., Scripta Metall. Mater., 25, 1271 (1991).Google Scholar
39. Lee, T. C., Robertson, I. M. and Birnbaum, H. K., Phil. Mag., 62, 131 (1990).Google Scholar
40. Clark, W. A. T. and Pond, R. C., Scripta Metall., 20, 1177 (1986).CrossRefGoogle Scholar
41. Foiles, S. M., MRS Proceedings, 81, 51 (1987).Google Scholar
42. Yan, M., Vitek, V. and Ackland, G. J., NATO Workshop on Ordered Intermetaliic Compounds, edited by Liu, C. T., to be published.Google Scholar
43. Voter, A. F. and Chen, S. P., MRS Proceedings, 82, 175 (1987).Google Scholar
44. Lee, T. C., Subramanian, R., Robertson, I. M. and Birnbaum, H. K., Scripta Metall. Mater., 25, 1265 (1991).Google Scholar
45. Swiatnicki, W. A. and Grabski, M. W., Acta Metali., 37, 1307 (1989).Google Scholar
46. Heredia, F. E. and Pope, D. P., MRS Proceedings, 133, 287 (1989).Google Scholar
47. Chen, S. P., Voter, A. F., Albers, R. C., Boring, A. M. and Hay, P. J., J. Mater. Res., 5, 955 (1990).CrossRefGoogle Scholar
48. Painter, G. S. and Averill, F. W., Phys. Rev. Lett., 58, 234 (1987).Google Scholar
49. Eberhart, M. E. and Vvedenski, D. D., Phys. Rev. Lett., 58, 61 (1986).Google Scholar
50. Masuda-Jindo, K., J. Physique, C5, 557 (1988).Google Scholar
51. Jokl, M. L., Vitek, V. and McMahon, C. J., Acta Metall, 28, 1479 (1980).Google Scholar
52. Chen, S. P., Voter, A. F. and Srolovitz, D. J., Scripta Metall., 20, 1389 (1986).Google Scholar
53. Fu, C. L., to be published.Google Scholar