Texture Formation during ECAP of Aluminum Alloy AA 5109

Author:

Skrotzki Werner1,Scheerbaum N.,Oertel C.G.1,Brokmeier Heinz Günter2,Suwas Satyam3,Tóth László S.4

Affiliation:

1. Dresden University of Technology

2. GKSS-Forschungszentrum Geesthacht GmbH

3. Indian Institute of Science

4. Université Paul Verlaine de Metz

Abstract

The technical aluminum alloy AA 5109 with a strong cube rolling texture has been deformed at room temperature by equal channel angular pressing (ECAP) using three passes of route A. Samples for ECAP have been cut parallel and at 45° with respect to the rolling direction yielding different starting textures. The local texture after ECAP has been investigated by highenergy synchrotron radiation. It is characterized by typical shear components of face-centred cubic (fcc) metals which deviate from their ideal positions. The texture with respect to intensity and deviation from ideal positions of the components depends on the distance from the top of the extruded billet and changes from pass to pass. It is also strongly influenced by the starting texture. The texture gradient has been discussed in the light of Tóth’s flow line model. The texture results have also been compared with those of other fcc metals with different stacking fault energy.

Publisher

Trans Tech Publications, Ltd.

Subject

Mechanical Engineering,Mechanics of Materials,Condensed Matter Physics,General Materials Science

Reference17 articles.

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2. W. Skrotzki, N. Scheerbaum, C. -G. Oertel, H. -G. Brokmeier, S. Suwas and L.S. Tóth: Solid State Phenomena (2005a), in press.

3. W. Skrotzki, N. Scheerbaum, C. -G. Oertel, H. -G. Brokmeier, S. Suwas and L.S. Tóth: Solid State Phenomena (2005b), in press.

4. W. Skrotzki, N. Scheerbaum, C. -G. Oertel, H. -G. Brokmeier, S. Suwas and L.S. Tóth: Mater. Sci. Forum (2006), in press.

5. G.J. Baxter, D. Duly, P.L. Orsetti Rossi, C.M. Sellars, J.A. Whiteman, H.R. Shercliff and M.F. Ashby: Proc. 16th Risø Symposium (1995), p.267.

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