Dislocation–Twin Boundary Interactions Induced Nanocrystalline via SPD Processing in Bulk Metals
Author:
Publisher
Springer Science and Business Media LLC
Subject
Multidisciplinary
Link
http://www.nature.com/articles/srep08981.pdf
Reference41 articles.
1. Tao, N. R. et al. An investigation of surface nanocrystallization mechanism in Fe induced by surface mechanical attrition treatment. Acta Mater. 50, 4603–4616 (2002).
2. Wen, C. S., Li, W. & Rong, Y. H. Nanocrystallization and martensitic transformation in Fe–23.4 Mn–6.5 Si–5.1 Cr (wt.%) alloy by surface mechanical attrition treatment. Mater. Sci. Eng. A 481, 484–488 (2008).
3. Zheng, S. J., Carpenter, J. S., McCabe, R. J., Beyerlein, I. J. & Mara, N. A. Engineering interface structures and thermal stabilities via SPD processing in bulk Nanostructured Metals. Sci. Rep. 4, 4226 (2014).
4. Fang, T. H., Li, W. L., Tao, N. R. & Lu, K. Revealing extraordinary intrinsic tensile plasticity in gradient nano-grained copper. Science 331, 1587–1590 (2011).
5. Yu, Q. B., Liu, X. H. & Tang, D. L. Extreme extensibility of copper foil under compound forming conditions. Sci. Rep. 3, 3556 (2013).
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