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A comparison of continuous SPD processes for improving the mechanical properties of aluminum alloy 6111

Published online by Cambridge University Press:  31 January 2011

R. Lapovok*
Affiliation:
CoE Design in Light Metals, Department of Materials Engineering, Monash University, Melbourne 3800, Australia
L.S. Tóth
Affiliation:
Laboratoire de Physique et Mécanique des Matériaux, Université Paul Verlaine de Metz, Ile du Saulcy, 57045 Metz, France
M. Winkler
Affiliation:
CoE Design in Light Metals, Department of Materials Engineering, Monash University, Melbourne 3800, Australia
*
a) Address all correspondence to this author. e-mail: rimma.lapovok@eng.monash.edu.au
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Abstract

Microstructure evolution, mechanical properties, formability, and texture development were determined for AA6111 samples processed by asymmetric rolling (ASR) with different roll friction, velocity, or diameters, conventional rolling (CR), and equal-channel-angular pressing (ECAP). Highly elongated or sheared grain structures were developed during ASR/CR and ECAP, respectively. ASR led to improved r-values and formability compared with CR primarily as a result of the development of moderate shear-texture components analogous to those developed during ECAP of billet material. ASR based on different roll diameters gave the best combination of strength, ductility, and formability.

Type
Articles
Copyright
Copyright © Materials Research Society 2009

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References

REFERENCES

1.Mariano, S.A., Tuler, F.R., Owen, W.S.: Comparing steel and aluminum auto structures by technical cost modeling. JOM 6, 20 (1993)CrossRefGoogle Scholar
2.Lewis, D.J.: Associates Pty Ltd. Aluminium: Growth Opportunities in the Automotive Industry(Department of Industry, Science and Technology Australia 1995)20Google Scholar
3.Lapovok, R., Yao, J.Y., Ringer, S.: On the application of 6xxx Al alloys in automotive body sheet applicationsCAST Report 2001 137(Cooperative Research Centre for Cast Metals Manufacturing 2001)Google Scholar
4.Lapovok, R., McKenzie, P.W.J., Thomson, P.F., Semiatin, S.L.: Processing and properties of ultrafine-grain aluminum alloy 5005 sheet. J. Mater. Sci. 45, 1649 (2007)Google Scholar
5.Lapovok, R., McKenzie, P.W.J., Thomson, P.F., Semiatin, S.L.: The influence of post-ECAP annealing on the properties of ultrafine-grained 5005 aluminum alloy sheet. J. Mater. Res. 22, (4)325 (2007)Google Scholar
6.Rhee, K.H., Laovok, R., Thomson, P.F.: The influence of severe plastic deformation on mechanical properties of AA6111 sheet at room temperature. JOM 57, 62 (2005)Google Scholar
7.Zisman, A.A., Rybin, V.V., Van Boxel, S., Seefeldt, M., Verlinden, B.: ECAD of aluminium sheet. Mater. Sci. Eng., A 427, 123 (2006)CrossRefGoogle Scholar
8.Jin, Y.H., Huh, M.Y., Chung, Y.H.: Evolution of textures and microstructures in if-steel sheets during continuous confined strip shearing and subsequent recrystallization annealing. J. Mater. Sci. 39, 5311 (2004)CrossRefGoogle Scholar
9.Huang, Y., Pragnell, P.B.: Continuous frictional angular extrusion and its application in the production of ultrafine-grained metals. Scr. Mater. 56, 333 (2007)CrossRefGoogle Scholar
10.Lapovok, R., Timokhina, I., McKenzie, P.W.J., O'Donnell, R.: Processing and properties of ultrafine-grain aluminum alloy 6111 sheet. J. Mater. Process. Technol. 200, 441 (2008)CrossRefGoogle Scholar
11.Kim, J.K., Jee, Y.K., Huh, M.Y., Jeong, H-T.: Formation of texture and microstructure in asymmetrically cold rolled and subsequently annealed aluminum alloy 1100 sheets. J. Mater. Sci. 39, 5365 (2004)CrossRefGoogle Scholar
12.Tzou, G.Y.: Relationship between frictional coefficient and frictional factor in asymmetric sheet rolling. J. Mater. Process. Technol. 86, 271 (1999)CrossRefGoogle Scholar
13.Jin, H., Lloyd, D.J.: Evolution of texture in AA6111 aluminum alloy after asymmetric rolling with various velocity ratios between top and bottom rolls. Mater. Sci. Eng., A 465, 267 (2007)Google Scholar
14.Utsunomiya, H., Ueno, T., Sakai, T.: Improvement in the r-value of aluminum sheets by differential-friction rolling. Scr. Mater. 57, 1109 (2007)Google Scholar
15.Sakai, T., Yoneda, K., Osugi, S.: Microstructure and texture control of Al-Mg alloy sheets by differential speed rolling. Mater. Sci. Forum 495-497, 507 (2005)Google Scholar
16.Hatherly, M., Hutchinson, W.B.: An Introduction to Textures in Metals(Institution of Metallurgists London 1979)Google Scholar
17.Montheillet, F., Cohen, M., Jonas, J.J.: Axial stresses and texture development during the torsion testing of Al, Cu and alpha-Fe. Acta Metall. 32, 2077 (1984)Google Scholar
18.Tóth, L.S., Gilormini, P., Jonas, J.J.: Effect of rate sensitivity on the stability of torsion textures. Acta Metall. 36, 3077 (1988)Google Scholar