ISSN: 1003-6326
CN: 43-1239/TG
CODEN: TNMCEW

Vol. 24    No. 12    December 2014

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Microstructure evolution and dislocation configurations in nanostructured Al-Mg alloys processed by high pressure torsion
Man-ping LIU1, Ting-hui JIANG1, Xue-feng XIE1, Qiang LIU1, Xue-feng LI1, Hans J. ROVEN2,3
(1. School of Materials Science and Engineering, Jiangsu Province Key Laboratory of Materials Tribology,
Jiangsu University, Zhenjiang 212013, China;
2. Department of Materials Science and Engineering,
Norwegian University of Science and Technology, Trondheim 7491, Norway;
3. Center for Advanced Materials, Qatar University, P.O. Box 2713, Doha, Qatar
)
Abstract: Microstructure evolution and dislocation configurations in nanostructured Al–Mg alloys processed by high pressure torsion (HPT) were analyzed by transmission electron microscopy (TEM) and high-resolution TEM (HRTEM). The results show that the grains less than 100 nm have sharp grain boundaries (GBs) and are completely free of dislocations. In contrast, a high density of dislocation as high as 1017 m-2 exists within the grains larger than 200 nm and these larger grains are usually separated into subgrains and dislocation cells. The dislocations are 60° full dislocations with Burgers vectors of 1/2á110? and most of them appear as dipoles and loops. The microtwins and stacking faults (SFs) formed by the Shockley partials from the dissociation of both the 60° mixed dislocation and 0° screw dislocation in ultrafine grains were simultaneously observed by HRTEM in the HPT Al–Mg alloys. These results suggest that partial dislocation emissions, as well as the activation of partial dislocations could also become a deformation mechanism in ultrafine-grained aluminum during severe plastic deformation. The grain refinement mechanism associated with the very high local dislocation density, the dislocation cells and the non-equilibrium GBs, as well as the SFs and microtwins in the HPT Al-Mg alloys were proposed.
Key words: Al-Mg aluminum alloy; severe plastic deformation; high pressure torsion; dislocation configurations; grain refinement; deformation mechanism
Superintended by The China Association for Science and Technology (CAST)
Sponsored by The Nonferrous Metals Society of China (NFSOC)
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