Modeling Strain Hardening the Hard Way
- 26 September 2003
- journal article
- editorial
- Published by American Association for the Advancement of Science (AAAS) in Science
- Vol. 301 (5641) , 1857-1858
- https://doi.org/10.1126/science.1090482
Abstract
The plastic deformation of metals results in strain hardening, that is, an increase in the stress with increasing strain. Materials engineers can provide a simple approximate description of such deformation and hardening behavior. In his perspective, Gumbsch discusses work by Madec et al. who have undertaken the formidable task of computing the physical basis for the development of strain hardening by individually following the fate of all the dislocations involved. Their simulations show that the collinear dislocation interaction makes a substantial contribution to strain hardening. It is likely that such simulations will play an important role in guiding the development of future engineering descriptions of deformation and hardening.Keywords
This publication has 4 references indexed in Scilit:
- The Role of Collinear Interaction in Dislocation-Induced HardeningScience, 2003
- From Dislocation Junctions to Forest HardeningPhysical Review Letters, 2002
- Dislocation dynamics in sub-micron confinement: recent progress in Cu thin film plasticityZeitschrift für Metallkunde, 2002
- Statistical dynamics of dislocation systems: The influence of dislocation-dislocation correlationsPhysical Review B, 2001