Acta Metallurgica Sinica (English Letters) >
Analysis of the cracks formation on surface of extruded magnesium rod based on numerical modeling and experimental verification
Received date: 2008-09-08
Revised date: 2008-12-29
Online published: 2009-10-15
To reduce the surface cracks of extrusion rod for AZ31 magnesium caused by nonhomogeneous metal flow in extrusion process, 3D computer finite element (FE) simulations of extruding a wrought magnesium alloy AZ31 into rods have been performed and the results have been verified in extrusion experiments under identical conditions. The tendency to generate the dead zone is decreased by employing the die angle 60° at the cone-shaped die comparing with the die angle 180°. The surface additional tensile stresses of the rod at the die exit are decreased greatly so that the surface cracks caused are avoided by using the die angle 60°. The extrusion die with die angle 180 °would increase the higher temperature rise and possibility of crac formation on the rod surface that caused by die angle 60° and temperature rise decrease tensile strength of the AZ31 rod. The experimental results show that die angle 180 °could cause continuous cracks on the surface of the extruded rod. The extrusion force required is reduced approximately 15 ton by employing the die angle 60°. Theoretical results obtained by the DeformTM-3D simulation agreed well with the experiments. The obtained results provide the fundamental and also practical guidelines for the design and correction of dies to produce magnesium rod with good surface quality.
Key words: Extrusion; Finite element; Magnesium alloy; Cracks; Experimental validation
Hongjun HU , Dingfei ZHANG , Fusheng PAN , Mingbo YANG . Analysis of the cracks formation on surface of extruded magnesium rod based on numerical modeling and experimental verification[J]. Acta Metallurgica Sinica (English Letters), 2009 , 22(5) : 353 -364 . DOI: 10.1016/S1006-7191(08)60109-X
[1] A.K. Dahle, D.H. StJohn and G.L. Dunlop, Mater Forum 24 (2000) 167.
[2] S. Kamado, H. Ohara and Y. Kojima, Adv Manufact Technol Magn Alloy (CMC Publishing Co, Tokyo, 2005) p.23.
[3] E. Doege and K. Droder, J Mater Proc Technol 115 (2001) 14.
[4] M.N. Ogawa, K. Shiomi and Osakada, Int J Machine Tool Manufact 42 (2002) 607.
[5] C. Margam and M. Yong and J. Shyan, Mater Sci Eng A381 (2004) 308.
[6] J.W. Song, J.W. Han, M.S. Kim and S.K. Hwang, Mater Sci Forum 449-452 (2004) 65.
[7] R.Y. Lapovok, M.R. Barnett and C.H.J.J. Davies, Mater Process Technol 146 (2004) 408.
[8] S.H. Hsiang, S.H. Kuo and J.L. An, J Mater Proc Technol 140 (2003) 6.
[9] F. Klocke, D. Breuer and H. Raedt, Adv Technol Plast 1 (2002) 720.
/
| 〈 |
|
〉 |