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Research Article

Abnormal grain growth induced by <112̄0> orientation of AZ31 magnesium alloy

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Pages 1337-1349 | Received 09 Oct 2022, Accepted 08 Jan 2023, Published online: 23 Jan 2023

References

  • Hong SG, Park SH, Lee CS. Enhancing the fatigue property of rolled AZ31 magnesium alloy by controlling 10-12 twinning-detwinning characteristics. J Mater Res. 2010;25(4):784–792.
  • Park SH, Hong SG, Lee CS. Enhanced stretch formability of rolled Mg-3Al-1Zn alloy at room temperature by initial 10-12 twins. Mater Sci Eng A. 2013;578:271–276.
  • Song B, Guo N, Liu TT, et al. Improvement of formability and mechanical properties of magnesium alloys via pre-twinning: a review. Mater Des. 2014;62:352–360.
  • Messina R, Soucail M, Kubin L. Monte Carlo simulation of abnormal grain growth in two dimensions. Mater Sci Eng A. 2001;308(1):258–267.
  • Humphreys FJ, Hatherly M. Recrystallization and related annealing phenomena. Amsterdam: Elsevier; 2004.
  • Basu I, Pradeep KG, Mießen C, et al. The role of atomic scale segregation in designing highly ductile magnesium alloys. Acta Mater. 2016;116:77–94.
  • Takata N, Yoshida F, Ikeda KI, et al. Abnormal grain growth of off-cube grains in high purity aluminum foils with cube texture. Mater Trans. 2005;46(12):2975–2980.
  • Chen QH, Chen RN, Su J, et al. The mechanisms of grain growth of Mg alloys: a review. J Magnes Alloy. 2022;10:2384–2397.
  • Su JM, Huang X, Song Z, et al. Overcoming the abnormal grain growth in Ga-doped Li7La3Zr2O12 to enhance the electrochemical stability against Li metal. Ceram Int. 2019;45(12):14991–14996.
  • Kalinenko A, Vysotskii I, Malopheyev S, et al. Relationship between welding conditions, abnormal grain growth and mechanical performance in friction-stir welded 6061-T6 aluminum alloy. Mater Sci Eng A. 2021;817:141409.
  • Abrivard G, Busso EP, Forset S, et al. Phase field modelling of grain boundary motion driven by curvature and stored energy gradients. Part I: theory and numerical implementation. Philos Mag. 2012;92(28–30):3618–3642.
  • Abrivard G, Busso EP, Forset S, et al. Phase field modelling of grain boundary motion driven by curvature and stored energy gradients. Part II: application to recrystallisation. Philos Mag. 2012;92(28–30):3643–3664.
  • Tanakay Y, Himuro Y, Kainuma R, et al. Ferrous polycrystalline shape-memory alloy showing huge superelasticity. Science. 2010;327(5972):1488–1490.
  • Xu S, Kusama T, Xiao X, et al. Large [001] single crystals via abnormal grain growth from columnar polycrystal. Materialia. 2019;6:100336.
  • Omori T, Iwaizako H, Kainuma R. Abnormal grain growth induced by cyclic heat treatment in Fe-Mn-Al-Ni superelastic alloy. Mater Des. 2016;101:263–269.
  • Omori T, Kusama T, Kawata S, et al. Abnormal grain growth induced by cyclic heat treatment. Science. 2013;341(6153):1500–1502.
  • Zhou X, Li XY, Lu K. Enhanced thermal stability of nanograined metals below a critical grain size. Science. 2018;360(6388):526–530.
  • Holm EA, Foiles SM. How grain growth stops: a mechanism for grain-growth stagnation in pure materials. Science. 2010;328(5982):1138–1141.
  • Wu Y, Luo Q, Qin EW. Influencing factors of abnormal grain growth in Mg alloy by phase field method. Mater Today Commun. 2020;22:100790.
  • Agnoli A, Bernacki M, Logé R, et al. Selective growth of Low stored energy grains during δ sub-solvus annealing in the Inconel 718 nickel-based superalloy. Mater Trans A. 2015;46(9):4405–4421.
  • Cho YK, Yoon DY, Henry MF. The effects of deformation and pre-heat-treatment on abnormal grain growth in RENÉ 88 superalloy. Mater Trans A. 2001;32(3):3077–3090.
  • Fisher JG, Kang SJL. Strategies and practices for suppressing abnormal grain growth during liquid phase sintering. J Am Ceram Soc. 2019;102(2):717–735.
  • Yang SY, Chi MY, Zhang JX, et al. Abnormal grain growth in annealing cast Cu-Al-Mn-V alloys and their superelasticity. Smart Mater Struct. 2019;28:055015.
  • Yang SY, Zhang JX, Chi MY, et al. Low-cost Cu-based shape memory single crystals obtained by abnormal grain growth showing excellent superelasticity. Materialia. 2019;5:100200.
  • Tang JW, Chen L, Zhao GQ, et al. Formation mechanism of abnormal coarse grains on weld seam of extruded ZK60 alloy and the effects on mechanical properties. Mater Sci Eng A. 2020;773:138718.
  • Xu W, Quadir MZ, Ferry M. A high-resolution three-dimensional electron backscatter diffraction study of the nucleation of recrystallization in cold-rolled extra-Low-carbon steel. Mater Trans A. 2009;40(7):1547–1556.
  • Yi S, Brokmeier HG, Letzig D. Microstructural evolution during the annealing of an extruded AZ31 magnesium alloy. J Alloys Compd. 2010;506(1):364–371.
  • Chen RN, Chen QH, Huang X, et al. Effect of Al content on the microstructural and grain growth kinetics of magnesium alloys. Metals (Basel). 2022;12(11):1955.
  • Pérez-prado MT, Ruano OA. Texture evolution during annealing of magnesium AZ31 alloy. Scr Mater. 2002;46(2):149–155.
  • Wu WX, Jin L, Zhang ZY, et al. Grain growth and texture evolution during annealing in an indirect-extruded Mg-1Gd alloy. J Alloys Compd. 2014;585:111–119.
  • Bhattacharyya JJ, Agnew SR, Muralidharan G. Texture enhancement during grain growth of magnesium alloy AZ31B. Acta Mater. 2015;86:80–94.
  • Wu MH, Zhang ZB, Xu XZ, et al. Seeded growth of large single-crystal copper foils with high-index facets. Nat. 2020;581(7809):406–410.
  • Roostaei M, Shirdel M, Parsa MH, et al. Microstructural evolution and grain growth kinetics of GZ31 magnesium alloy. Mater Charact. 2016;118:584–592.
  • Higgins GT. Grain-boundary migration and grain growth. Met Sci. 1974;8(1):143–150.
  • Gottstein G, Shvindlerman LS. Grain boundary migration in metals: thermodynamics, kinetics, applications. Boca Raton (FL): CRC Press; 2009.
  • Miao Q, Hu LX, Wang X, et al. Grain growth kinetics of a fine-grained AZ31 magnesium alloy produced by hot rolling. J Alloys Compd. 2010;493(1):87–90.
  • Wang Y, Choo H. Influence of texture on Hall-Petch relationships in an Mg alloy. Acta Mater. 2014;81:83–97.
  • Doiphode RL, Murty SVSN, Prabhu N, et al. Grain growth in calibre rolled Mg-3Al-1Zn alloy and its effect on hardness. J Magnes Alloy. 2015;3(4):322–329.
  • Su CW, Lu L, Lai MO. Recrystallization and grain growth of deformed magnesium alloy. Philos Mag. 2008;88(2):181–200.
  • Wang X, Hu LX, Liu K, et al. Grain growth kinetics of bulk AZ31 magnesium alloy by hot pressing. J Alloys Compd. 2012;527:193–196.
  • Ma JJ, Yang XY, Huo QH, et al. Mechanical properties and grain growth kinetics in magnesium alloy after accumulative compression bonding. Mater Des. 2013;47:505–509.
  • Dubinko A, Terentyev D, Bakaeva A, et al. Evolution of plastic deformation in heavily deformed and recrystallized tungsten of ITER specification studied by TEM. Int J Refract Met Hard Mater. 2017;66:105–115.
  • Kaibyshev R. Advances in wrought magnesium alloys. London: Woodhead; 2012.
  • Peng P, She J, Tang A, et al. A strategy to regulate the microstructure and properties of Mg-2.0Zn-1.5Mn magnesium alloy by tracing the existence of Mn element. J Alloys Compd. 2022;890:161789.
  • Peng P, Zhang K, She J, et al. Role of second phases and grain boundaries on dynamic recrystallization behavior in ZK60 magnesium alloy. J Alloys Compd. 2021;861:157958.
  • Jin ZY, Yu DH, Wu XT, et al. Drag effects of solute and second phase distributions on the grain growth kinetics of Pre-extruded Mg-6Zn alloy. J Mater Sci Technol. 2016;32(12):1260–1266.
  • Wu Y. Effect of second phase particles on grain growth for nanocrystalline AZ31 Mg alloy by phase field methods. EDP Sci. 2015;25:131–136.
  • Li ZQ, Wang JS, Huang HB. Influences of grain/particle interfacial energies on second-phase particle pinning grain coarsening of polycrystalline. J Alloys Compd. 2020;818:152848.
  • Bugnet M, Kula A, Niewczas M, et al. Segregation and clustering of solutes at grain boundaries in Mg-rare earth solid solutions. Acta Mater. 2014;79:66–73.
  • Xu HJ, Shu XD, Zuo JR, et al. Kinetic Monte Carlo simulation of abnormal grain growth in textured systems with anisotropic grain boundary energy and mobility. Mater Today Commun. 2022;30:103133.
  • Liu M, Qiu D, Zhao MC, et al. The effect of crystallographic orientation on the active corrosion of pure magnesium. Scr Mater. 2008;58(5):421–424.
  • Pérez-prado MT, Ruano OA. Texture evolution during grain growth in annealed MG AZ61 alloy. Scr Mater. 2003;48(1):59–64.

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