Internal friction peak associated with dislocations in Mg-0.6%Zr alloy

  • HU Xiao-Feng ,
  • JIANG Hai-Chang ,
  • RONG Li-Jian
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  • Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China

Received date: 2011-01-05

  Revised date: 2011-03-29

  Online published: 2011-10-18

Abstract

The internal friction (IF) of Mg-0.6%Zr alloy is measured in the present study and two IF peaks of (P1 (97℃, 1 Hz) and P2 (230 ℃, 1 Hz)) are found, respectively. It is shown that the novel P1 peak is frequency independent and the peak temperature increased with the increase of strain amplitude or heating rate. P1 peak could be repressed by the reheating-up measurements and represented by heat treatment. The mechanism of P1 peak is clarified by optical microscope (OM) and transmission electron microscope (TEM) observation, and considered to be caused by the creation and expansion of dislocations during plastic deformation. The P2 peak is a thermally activated relaxation IF peak, and activation energy is 1.46~eV, which is caused by the relaxation of the grain boundaries in Mg-0.6%Zr alloy.

Cite this article

HU Xiao-Feng , JIANG Hai-Chang , RONG Li-Jian . Internal friction peak associated with dislocations in Mg-0.6%Zr alloy[J]. Acta Metallurgica Sinica (English Letters), 2011 , 24(5) : 335 -342 . DOI: 10.11890/1006-7191-115-335

References

[1] A.C. Nowick and B.S. Berry,  Anelastic Relaxation in Crystalline Solids  (Academic Press, New York,1972) p.235.

[2] T.S. Ke and L.D. Zhang,  Internal Friction and Ultrasonic Attenuation  (Atomic Energy Press, Beijing, 1989)p.124.

[3] A. Granato and K. Luecke,  J Appl Phys  27(6) (1956) 583.

[4]  A. Granato and K. Luecke,  J Appl Phys  27(7) (1956) 789.

[5]  X.S. Hu, Y.K. Zhang, M.Y. Zheng and K. Wu,  Scr Mater 52(11)  (2005) 1141.

[6]  I.S. Golovin,  Key Eng Mater  319  (2006) 225.

[7]  K. Sugimoto, K. Niiya, T. Okamoto and K. Kishitake, Trans JIM  18(3)  (1977) 277.

[8]  K. Kawahara,  Key Eng Mater  319  (2006) 217.

[9]  R.E. Reed-hill and W.D. Robertson,  Acta Metall  5 (1957) 717.

[10] F.E. Hauser, P.R. Landon and J.E. Dorn,  Trans ASM 48  (1956) 986.

[11] F.E. Hauser, C.D. Starr, L. Tieta and J.E. Dorn,  Trans ASM  47  (1955) 102.

[12] A.R. Chaudhuri, H.C. Chang and N.J. Grant,  Trans AIME 203  (1955) 682.

[13] A. Munitz, R.E. Ricker, D.J. Pitchure and G. Kimmel,  Metall Mater Trans A  36A(9)  (2005) 2403.

[14] E. Bonetti, E. Evangelista and P. Gondi,  Phy Stat Sol A  44  (1977) K31.

[15] E. Bonetti, E. Evangelista and P. Gondi,  Phy Stat Sol A  53  (1979) 653.

[16] T. Ohgaku and Y. Hasegawa,  J Mater Sci  36(15) (2001) 3617.

[17] F.C. Frank and W.T. Read,  Phys Rev  79  (1950)722.

[18] E. Bonetti, E. Evangelista and P. Gondi,  Phys Stat Sol A  53  (1979) 653.

[19] B. Cai and Q.P. Kong,  Phy Stat Sol A  173(2) (1999) 365.

[20] G.L. Hao, F.S. Han, Q.Z. Wang and J. Wu,  Phy B 391(1)  (2007) 186.
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