| Article ID | Journal | Published Year | Pages | File Type | 
|---|---|---|---|---|
| 10620977 | Acta Materialia | 2005 | 13 Pages | 
Abstract
												The effect of fine dispersoids on the mechanisms and rate of grain refinement has been investigated during the severe deformation of a model aluminium alloy. A binary Al-0.2Sc alloy, containing coherent Al3Sc dispersoids, of â¼20 nm in diameter and â¼100 nm spacing, has been deformed by equal channel angular extrusion to an effective strain of ten. The resulting deformation structures were quantitatively analysed using high-resolution electron backscattered diffraction orientation mapping, and the results have been compared to those obtained from a single-phase Al-0.13Mg alloy, deformed under identical conditions. The presence of fine, non-shearable, dispersoids has been found to homogenise slip, retard the formation of a cellular substructure and inhibit the formation of microshear bands during deformation. These factors combine to reduce the rate of high-angle grain boundary generation at low to medium strains and, hence, retard the formation of a submicron grain structure to higher strains during severe deformation.
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													Physical Sciences and Engineering
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											Authors
												P.J. Apps, M. Berta, P.B. Prangnell, 
											