267
Views
0
CrossRef citations to date
0
Altmetric
Part A: Materials Science

Influence of strain path change on static recrystallisation behaviour of an extruded pure magnesium

, , &
Pages 1364-1379 | Received 11 Sep 2020, Accepted 01 Mar 2021, Published online: 26 Mar 2021

References

  • B.L. Mordike and T. Ebert, Magnesium: properties—applications—potential. Mater. Sci. Eng. A 302 (1) (2001), pp. 37–45.
  • S.B. Davenport and R.L. Higginson, Strain path effects under hot working: an introduction. J. Mater. Process. Technol. 98 (3) (2000), pp. 267–291.
  • F.J. Humphreys and M. Hatherly, Recrystallization and Related Annealing Phenomena, Elsevier, Oxford U.K., 2012.
  • X. Li, P. Yang, L.N. Wang, L. Meng and F.E. Cui, Orientational analysis of static recrystallization at compression twins in a magnesium alloy AZ31. Mater. Sci. Eng. A 517 (1–2) (2009), pp. 160–169.
  • J. Jain, W.J. Poole and C.W. Sinclair, The deformation behaviour of the magnesium alloy AZ80 at 77 and 293 K. Mater. Sci. Eng. A 547 (2012), pp. 128–137.
  • A. Jain and S.R. Agnew, Effect of twinning on the mechanical behavior of a magnesium alloy sheet during strain path changes. Magn. Technol. 2006 (2006), pp. 219–224.
  • G. Proust, C.N. Tomé, A. Jain and S.R. Agnew, Modeling the effect of twinning and detwinning during strain-path changes of magnesium alloy AZ31. Int. J. Plast. 25 (5) (2009), pp. 861–880.
  • J. Zou, J. Jain, and C.W. Sinclair, Tracing nucleation and grain growth during static recrystallization of pure Mg by EBSD. Magn. Technol. 2009 (2009), pp. 13–17.
  • G. Gottstein and T. Al Samman, Texture development in pure Mg and Mg alloy AZ31, in Materials Science Forum Vol. 495, Trans Tech Publications Ltd, 2005, Switzerland, pp. 623–632.
  • C.W. Su, L. Lu and M.O. Lai, Recrystallization and grain growth of deformed magnesium alloy. Philos. Mag. 88 (2) (2008), pp. 181–200.
  • J. Su, M. Sanjari, A.S.H. Kabir, J.J. Jonas and S. Yue, Static recrystallization behavior of magnesium AZ31 alloy subjected to high speed rolling. Mater. Sci. Eng. A 662 (2016), pp. 412–425.
  • H.Y. Chao, H.F. Sun, W.Z. Chen and E.D. Wang, Static recrystallization kinetics of a heavily cold drawn AZ31 magnesium alloy under annealing treatment. Mater. Charact. 62 (3) (2011), pp. 312–320.
  • N. Ansari, R. Sarvesha, S.Y. Lee, S.S. Singh and J. Jain, Influence of yttrium addition on recrystallization, texture and mechanical properties of binary Mg–Y alloys. Mater. Sci. Eng. A 793 (2020), pp. 139856.
  • T. Al-Samman and G. Gottstein, Dynamic recrystallization during high temperature deformation of magnesium. Mater. Sci. Eng. A 490 (1–2) (2008), pp. 411–420.
  • R. Kaibyshev, B. Sokolov, and A. Galiyev, The influence of crystallographic texture on dynamic recrystallization. Textures Microstruct. 32 (1970), pp. 47–63.
  • N.V. Dudamell, I. Ulacia, F. Gálvez, S. Yi, J. Bohlen, D. Letzig and M.T. Pérez-Prado, Influence of texture on the recrystallization mechanisms in an AZ31 Mg sheet alloy at dynamic rates. Mater. Sci. Eng. A 532 (2012), pp. 528–535.
  • M.R. Barnett, Influence of deformation conditions and texture on the high temperature flow stress of magnesium AZ31. J. Light Met. 1 (3) (2001), pp. 167–177.
  • J.D. Embury, W.J. Poole and E. Koken, Some views on the influence of strain path on recrystallization. Scr. Metall. Mater. 27 (11) (1992), pp. 1465–1470.
  • Q. Zhu, C.M. Sellars and T.R. McNelley (Ed.), Proc. 3rd Int. Conf. on Recrystallization and Related Phenomena, Monterey Institute of Advanced Studies, Monterey, USA (1997), p. 195
  • P. Prakash, D. Toscano, S.K. Shaha, M.A. Wells, H. Jahed and B.W. Williams, Effect of temperature on the hot deformation behavior of AZ80 magnesium alloy. Mater. Sci. Eng. A 794 (2020), pp. 139923.
  • H.J. Jeong, M.J. Kim, J.W. Park, C.D. Yim, J.J. Kim, O.D. Kwon, P.P. Madakashira and H.N. Han, Effect of pulsed electric current on dissolution of Mg17Al12 phases in as-extruded AZ91 magnesium alloy. Mater. Sci. Eng. A 684 (2017), pp. 668–676.
  • A. Imandoust, C.D. Barrett, A.L. Oppedal, W.R. Whittington, Y. Paudel and H. El Kadiri, Nucleation and preferential growth mechanism of recrystallization texture in high purity binary magnesium-rare earth alloys. Acta Mater. 138 (2017), pp. 27–41.
  • F. Bachmann, R. Hielscher, and H. Schaeben, Texture analysis with MTEX–free and open source software toolbox, in Solid State Phenomena Vol. 160, Trans Tech Publications Ltd, 2010, Switzerland, pp. 63–68.
  • D. Sarker, J. Friedman and D.L. Chen, Influence of pre-deformation and subsequent annealing on strain hardening and anisotropy of AM30 magnesium alloy. J. Alloys Compd. 611 (2014), pp. 341–350.
  • Y. Xin, H. Zhou, H. Yu, R. Hong, H. Zhang and Q. Liu, Controlling the recrystallization behavior of a Mg–3Al–1Zn alloy containing extension twins. Mater. Sci. Eng. A 622 (2015), pp. 178–183.
  • B. Syed, J. Geng, R.K. Mishra and K.S. Kumar, [0 0 0 1] compression response at room temperature of single-crystal magnesium. Scr. Mater. 67 (7–8) (2012), pp. 700–703.
  • J. Koike, Y. Sato, and D. Ando, Origin of the anomalous {10\\bar12} twinning during tensile deformation of Mg alloy sheet. Mater. Trans. 49 (2008), pp. 0811070603–0811070603.
  • Y. Xin, M. Wang, Z. Zeng, M. Nie and Q. Liu, Strengthening and toughening of magnesium alloy by {1 0− 1 2} extension twins. Scr. Mater. 66 (1) (2012), pp. 25–28.
  • M. Knezevic, A. Levinson, R. Harris, R.K. Mishra, R.D. Doherty and S.R. Kalidindi, Deformation twinning in AZ31: influence on strain hardening and texture evolution. Acta Mater. 58 (19) (2010), pp. 6230–6242.
  • S.G. Hong, S.H. Park and C.S. Lee, Role of {10–12} twinning characteristics in the deformation behavior of a polycrystalline magnesium alloy. Acta Mater. 58 (18) (2010), pp. 5873–5885.
  • H. Yoshinaga and R. Horiuchi, Deformation mechanisms in magnesium single crystals compressed in the direction parallel to hexagonal axis. Trans. Jpn. Inst. Met. 4 (1) (1963), pp. 1–8.
  • E.O. Hall, The deformation and ageing of mild steel: III discussion of results. Proc. Phys. Soc. London, Sect. B 64 (9) (1951), pp. 747.
  • N.J. Petch, The cleavage strength of polycrystals. J. Iron Steel Inst. 174 (1953), pp. 25–28.
  • P.N. Kalu and D.R. Waryoba, A JMAK-microhardness model for quantifying the kinetics of restoration mechanisms in inhomogeneous microstructure. Mater. Sci. Eng. A 464 (1–2) (2007), pp. 68–75.
  • N. Ansari, B. Tran, W.J. Poole, S.S. Singh, H. Krishnaswamy and J. Jain, High temperature deformation behavior of Mg-5wt.% Y binary alloy: constitutive analysis and processing maps. Mater. Sci. Eng. A 777 (2020), pp. 139051.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.