The Annealing Behavior of cryoECAP Processed Pure Aluminum under High Magnetic Field

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Abstract:

The property and microstructure of pure Al prepared by the cryogenic ECAP after annealing at different temperatures and times with and without the application of 12T high magnetic field were investigated by hardness test and optical microscopy observation. The results show that with the application of high magnetic field, the hardness of cryo-ECAPed pure Al is lower than that of material annealing without high magnetic field. The high magnetic field accelerates crystallization of cryo-ECAPed pure Al during annealing.

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391-396

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July 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] Y.M. Wang, M.W. Chen, F.H. Zhou and E. Ma: Nature Vol.419 (2002) p.912.

Google Scholar

[2] Y.M. Wang, M.W. Chen, H.W. Shen and E. Ma: J. Mater. Res. Vol.17 (2002) p.3004.

Google Scholar

[3] J. Lu, O.J. Yin, Y. He and B.F. Ding: Rare Mater. Eng. Vol.34 (2005) p.742.

Google Scholar

[4] S. Ferrasse, V.M. Segal and F. Alford: Mater. Sci. Eng. A Vol.372 (2004) p.235.

Google Scholar

[5] M. Haouaoui, K.T. Hartwig and E.A. Payzant: Acta Mater. Vol.53 (2005) p.801.

Google Scholar

[6] A.A. Gazder, F. D. Torre, C.F. Gu, C.H.J. Davies and E.V. Pereloma: Mater. Sci. Eng. A Vol.415 (2006) p.126.

Google Scholar

[7] W.Q. Cao, A. Godfrey, W. Liu and Q. Liu, Mater. Sci. Eng. A Vol.360 (2003) p.420.

Google Scholar

[8] C.Y. Yu, P.L. Sun, P.W. Kao and C.P. Chang: Mater. Sci. Eng. A Vol.366 (2004) p.310.

Google Scholar

[9] D.G. Morris and M.A. Munoz-Morris: Acta Mater. Vol.50 (2002) p.4047.

Google Scholar

[10] H. Mughrabi, H.W. Hoppel, M. Kautz and R.Z. Valiev: Z. Metallkd. Vol.94 (2003) p.1079.

Google Scholar

[11] G.M. Ludtka, R.A. Jaramillo, R.A. Kisner, D.M. Nicholson, J.B. Wilgen, G. Mackiewicz-Ludtka and P. N. Kalu: Scr. Mater. Vol.51 (2004) p.171.

DOI: 10.1016/j.scriptamat.2004.03.029

Google Scholar

[12] Y.D. Zhang, C. Esling, J.S. Lecomte, C.S. He, X. Zhao and L. Zuo: Acta Mater. Vol. 53 (2005) p.5213.

Google Scholar

[13] M. Qi, Y. Wang, Y.N. Wang and D.Z. Yang: J. Func. Mater. Vol.36 (2005) p.35.

Google Scholar

[14] X.N. Wang, Z. Chen and B. Liu: Mater. Rev. Vol.16 (2002) p.25.

Google Scholar

[15] H. Kuwahara, Y. Tomioka and A. Asamitsu: Science Vol.270 (1995) p.961.

Google Scholar

[16] M. Shimotomai and K. Maruta: Scr. Mater. Vol.42 (2000) p.499.

Google Scholar

[17] D.A. Molodov and P.J. Konijnenberg: Scr. Mater. Vol.54 (2006) p.977.

Google Scholar

[18] G.H. Feng, S.X. Zhou, G. Yang and Z.C. Lu: J. Iron and Steel Research Vol.12 (2000) p.27.

Google Scholar

[19] S. Bhaumik, X. Molodova, D.A. Molodov and G. Gottstein: Scr. Mater. Vol.55 (2006) p.995.

Google Scholar

[20] X.T. Liu, J.Z. Cui and F.X. Yu: J. Mater. Sci. Vol.39 (2004) p.2935.

Google Scholar

[21] W. Liu, K.M. Liang, Y.K. Zhong and J.Z. Cui: J. Mater. Sci. Lett. Vol.15 (1996) p.1918.

Google Scholar

[22] W. Liu and J.Z. Cui: J. Mater. Sci. Lett. Vol.16 (1997) p.1410.

Google Scholar