Research paper

Numerical simulation of temperature field of AZ91D magnesium alloy during equal channel angular extrusion

  • ZHANG Xiao-Hua ,
  • LUO Shou-Jing
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  • School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, China

Received date: 2009-03-10

  Revised date: 2009-04-02

  Online published: 2010-02-09

Abstract

The temperature field of AZ91D magnesium alloy extruded by equal channel angular extrusion (ECAE) has been simulated using finite element method (FEM). A series of tests were designed to obtain the simulation parameters: flow stress of AZ91D, friction factor and heat transfer coefficient. The simulated temperature agrees well with the measured one. The evolution of temperature and influencing factor was discussed in details. Furthermore, the extrusion pressure of ECAE was analyzed.

Cite this article

ZHANG Xiao-Hua , LUO Shou-Jing . Numerical simulation of temperature field of AZ91D magnesium alloy during equal channel angular extrusion[J]. Acta Metallurgica Sinica (English Letters), 2010 , 23(1) : 35 -40 . DOI: 10.11890/1006-7191-101-35

References

[1] V.M. Segal, V.I. Reznikov, A.E. Drobyshevskiy and V.I. Kopylov,  Russ Metall  1  (1981) 99.
[2] V.M. Segal,  Mater Sci Eng  A197  (1995) 157.
[3] J.R. Bowen, A. Gholinia, S.M. Roberts and P.B. Prangnell, Mater Sci Eng  A287  (2000) 87.
[4] L. Dupuy and E.F. Rauch,  Mater Sci Eng  A337 (2002) 241.
[5] V.M. Segal,  Mater Sci Eng  A476  (2008) 178.
[6] Y. Iwashi, J. Wang, Z. Horita, M. Nemoto and T.G. Langdon, Scr Mater  35  (1996)143.
[7] V.N. Anumalasetty, W. Wei, T.H. Yip and G. Chen,  Adv Eng Mater  9(7)  (2007) 572.
[8] W. Wei, A.V. Nagasekhar, G. Chen, T.H. Yip and X.W. Kun, Scr  Mater  54  (2006) 1865.
[9] A.R. Eivani and A. Karimi Taheri,  Comput Mater Sci  41  (2008) 409.
[10] S. Ferrasse, V.M. Segal, S.R. Kalidindi and F. Alford, Mater Sci Eng   A368  (2004) 28.
[11] X.H. Zhang, S.J. Luo and Z.M. Du,  Trans Nonferrous Met Soc Chin  18(1)  (2008) 92.
[12] S. Ferrasse, V.M. Segal and F. Alford,  Mater Sci Eng A372  (2004) 235.
[13] S. Suwas, G. Gottstein and R. Kumar,  Mater Sci Eng A471  (2007) 1.
[14] S.Y. Li, B.R. Donohue and S.R. Kalidindi,  Mater Sci Eng  A480  (2008) 17.
[15] B. Beausir, S. Suwas, L.S. Toth, K.W. Neale and J.J.Fundenberger,  Acta Mater  56  (2008) 200.
[16] S.G. Chowdhury, A.M. Gubicza and G. Krallics,  Mater Sci Eng  A490  (2008) 335.
[17] T. Mukai, M. Yamanoi, H. Watanabe and K. Higashi,  Scr Mater  45  (2001) 89.
[18] W.J. Kim, S.I. Hong, Y.S. Kim, S.H. Min, H.T. Jeong and J.D. Lee,  Acta Mater  51  (2003) 3293.
[19] K. Mathis, J. Gubicza and N.H. Nam,  J Alloys Compd 394  (2005) 194.
[20] Z.M. Zhang, C.J. Xu, J.C. Wang and H.Z. Liu,  Acta Metall Sin (Engl Lett)  19(3)  (2006) 223.
[21] B. Chen, D.L. Lin, L. Jin, X.Q. Zeng and C. Lu,  Mater Sci Eng  A483-484  (2008) 113.

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