X-ray microbeam measurements of individual dislocation cell elastic strains in deformed single-crystal copper

Author:

Levine Lyle E.,Larson Bennett C.,Yang Wenge,Kassner Michael E.,Tischler Jonathan Z.,Delos-Reyes Michael A.,Fields Richard J.,Liu Wenjun

Publisher

Springer Science and Business Media LLC

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science,General Chemistry

Reference33 articles.

1. Kubin, L. in Dislocation Patterning (eds Cahn, R. W., Haasen, P. & Kramer, E. J.) 137–190 (Mughrabi, H. (Vol. ed) Materials Science and Technology, Vol. 6, VCH, Weinheim, 1993).

2. Sevillano, J. G. in Flow Stress and Work Hardening (eds Cahn, R. W., Haasen, P. & Kramer, E. J.) 19–88 (Mughrabi, H. (Vol. ed.) Materials Science and Technology, Vol. 6, VCH, Weinheim, 1993).

3. Gómez-García, D., Devincre, B. & Kubin, L. P. Dislocation patterns and the similitude principle: 2.5D mesoscale simulations. Phys. Rev. Lett. 96, 125503 (2006).

4. Argon, A. S. & Haasen, P. A new mechanism of work hardening in the late stages of large strain plastic flow in f.c.c. and diamond cubic crystals. Acta Metall. Mater. 41, 3289–3306 (1993).

5. Thomson, R. & Levine, L. E. Theory of strain percolation in metals. Phys. Rev. Lett. 81, 3884–3887 (1998).

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