Hostname: page-component-78c5997874-fbnjt Total loading time: 0 Render date: 2024-11-10T09:32:33.842Z Has data issue: false hasContentIssue false

Dislocation patterning and recovery under single slip: modelling micromechanisms from observations

Published online by Cambridge University Press:  15 February 2011

Patrick Veyssière
Affiliation:
LEM, CNRS-ONERA, BP 72, 92322 Châtillon cedex, France.
Yu-Lung Chiu
Affiliation:
LEM, CNRS-ONERA, BP 72, 92322 Châtillon cedex, France.
Fabienne Grégori
Affiliation:
LPMTM, Institut Galilée, 99 Av. J. B. Clément, 93430 Villetaneuse, France.
Get access

Abstract

The paper focuses on the formation and on the role of prismatic loops during deformation. The analysis is restricted to non-diffusive processes in fcc-related crystals. Double cross-slip and cross-slip dipolar annihilation yield strings of loops such that one loop extremity is aligned in the screw direction with the extremity of its nearest neighbour. Reactions between prismatic loops and mobile dislocations are at the origin of a number of microstructural reactions including recovery, dislocation entanglements and patterning in single slip, dislocation multiplication and there is indication that they may nucleate twins.

Type
Research Article
Copyright
Copyright © Materials Research Society 2003

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. Johnston, W. G. and Gilman, J. J.. J. Appl. Phys., 1960. 31: p. 632.Google Scholar
2. Fourie, J. T. and Wilsdorf, H. G. F.. J. Appl. Phys., 1960. 31: p. 2219.Google Scholar
3. Fujita, H.. J. Phys. Soc. Jap., 1967. 23(6): p. 1349.Google Scholar
4. Fujita, H.. Journal of Electron Microscopy, 1968. 17(2): p. 72.Google Scholar
5. Fujita, H.. Trans. Jap. Inst. Met. Suppl., 1968. 9(943948).Google Scholar
6. Veyssière, P. and Grégori, F.. Phil. Mag. A, 2002. 82(3): p. 567.Google Scholar
7. Cai, W., Bulatov, V. V., Yip, S. and Argon, A. S.. Mat. Sci. Engng, 2001. A309–310: p. 270.Google Scholar
8. Veyssière, P. and Grégori, F.. Phil. Mag. Lett., 2001. 81(12): p. 795.Google Scholar
9. Shi, X., Saada, G. and Veyssière, P.. Phil. Mag. Lett., 1995. 71(1): p. 1.Google Scholar
10. Grégori, F. and Veyssière, P.. Phil. Mag. A, 2002. 82(3): p. 553.Google Scholar
11. Loretto, M. H., Clareborough, L. M. and Segall, R. L.. Phil. Mag., 1964: p. 459.Google Scholar
12. Hirth, J. P. and Lothe, J.. 1968, NewYork:McGraw-Hill. 780.Google Scholar
13. Hirsch, P. B.. Phil. Mag., 1962. 7: p. 67.Google Scholar
14. Veyssière, P. and Grégori, F.. Phil. Mag. A, 2002. 82(3): p. 579.Google Scholar
15. Hazzledine, P. M.. J. Physique, 1966. 27(juillet-août): p. C3.Google Scholar
16. Essmann, U. and Mughrabi, H.. Phil. Mag. A, 1979. 40(6): p. 731.Google Scholar
17. Veyssière, P.. Phil. Mag. Lett., 2001. 81(11): p. 733.Google Scholar
18. Venables, J.A.. Phil. Mag., 1961. 6: p. 379.Google Scholar
19. Venables, J.A.. J. Phys. Chem. Solids, 1964. 25: p. 315.Google Scholar
20. Niewczas, M. and Saada, G.. Phil. Mag. A, 2001. 82(1): p. 167.Google Scholar
21. Carter, C. B.. Phil. Mag., 1977. 36(1): p. 147.Google Scholar