Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10620318 | Acta Materialia | 2013 | 10 Pages |
Abstract
A physically based model to predict the increment of hardness and grain refinement of pure metals due to severe plastic deformation by high-pressure torsion (HPT) is proposed. The model incorporates volume-averaged thermally activated dislocation annihilation and grain boundary formation. Strengthening is caused by dislocations in the grain and by grain boundaries. The model is tested against a database containing all available reliable data on HPT-processed pure metals. It is shown that the model accurately predicts hardening and grain size of the pure metals, irrespective of crystal structure (face-centred cubic, body-centred cubic and hexagonal close packed). Measured dislocation densities also show good correlation with predictions. The influence of stacking fault energy on hardening is very weak (of the order of â0.03Â GPa per 100Â JÂ molâ1).
Related Topics
Physical Sciences and Engineering
Materials Science
Ceramics and Composites
Authors
Marco J. Starink, Xiaoyu Cheng, Shoufeng Yang,