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Recrystallization initiated by low-temperature grain boundary motion coupled to stress

  • John W. Cahn und Yuri Mishin
Veröffentlicht/Copyright: 11. Juni 2013
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Abstract

We propose a new mechanism of recrystallization of cold-deformed metals. During the cold deformation, some of the high-angle grain boundaries are moved by the applied stresses, producing low-curvature bulges and leaving almost defect-free regions behind. The driving force for this motion is very high and can be comparable to the yield stress of the material. Upon subsequent heating without applied stresses, such moved boundaries can continue to move without encountering an energy barrier (which is typical of most nucleation models) under the much smaller driving force arising from the stored energy difference across the boundary.


* Correspondence address, Y. Mishin, Department of Physics, MSN 3F3, George Mason University, 4400 University Drive, Fairfax, VA 22030, USA, Tel.: +1 703 993 3984, Fax: +1 703 993 1269, E-mail:

References

[1] R.W.Cahn: Proc. Phys. Soc. Ser. AI63 (1950) 323.10.1088/0370-1298/63/4/302Suche in Google Scholar

[2] A.H.Cottrell, in: B.Chalmers (Ed.), Progress in Metal Physics, Vol. 4, Pergamon Press, London (1953) 251.10.1016/0502-8205(53)90018-5Suche in Google Scholar

[3] C.S.Smith: Journal of the Institute of Metals74 (1947/48) 742.Suche in Google Scholar

[4] H.Hu, in: G.Thomas, J.Washburn (Eds.), Electron Microscopy and Strength of Crystals, Interscience, New York (1963) 564.Suche in Google Scholar

[5] J.C.M.Li: J. Appl. Phys.33 (1962) 2958.10.1063/1.1728543Suche in Google Scholar

[6] R.D.Doherty, J.A.Szpunar: Acta Metall.32 (1984) 1789.Suche in Google Scholar

[7] A.J.Haslam, S.R.Phillpot, D.Wolf, D.Moldovan, H.Gleiter: Mat. Sci. Eng. A318 (2001) 293.Suche in Google Scholar

[8] F.J.Humphreys: Mater. Sci. Forum467–470 (2004) 467.10.4028/www.scientific.net/MSF.467-470.107Suche in Google Scholar

[9] W.G.Burgers: Rekristallisation, Verformer Zustand und Erholung, Akademischer Verlagsgesellschaft, Leipzig (1941).Suche in Google Scholar

[10] P.A.Beck, P.R.Sperry: J. Appl. Phys.21 (1950) 150.Suche in Google Scholar

[11] W.G.Burgers, P.C.Louwerse: Z. Phys.67 (1931) 605.Suche in Google Scholar

[12] R.Sebald, G.Gottstein: Acta Mater.50 (2002) 1587.Suche in Google Scholar

[13] H.E.Vatne, E.Nes: Scripta Metall. Mater.30 (1994) 309.Suche in Google Scholar

[14] H.E.Vatne, T.Furu, E.Nes: Mats. Sci. Tech.12 (1996) 201.Suche in Google Scholar

[15] A.Suzuki, Y.Mishin: Mater. Sci. Forum502 (2005) 157.Suche in Google Scholar

[16] J.W.Cahn, Y.Mishin, A.Suzuki: Philos. Mag.86 (2006) 3965.Suche in Google Scholar

[17] J.W.Cahn, Y.Mishin, A.Suzuki: Acta Mater.54 (2006) 4953.Suche in Google Scholar

[18] Y.Mishin, A.Suzuki, B.Uberuaga, A.F.Voter: Phys. Rev. B75 (2007) 224101.Suche in Google Scholar

[19] V.A.Ivanov, Y.Mishin: Phys. Rev. B78 (2008) 064106.Suche in Google Scholar

[20] N.Bernstein: Acta Mater.56 (2008) 1106.10.1016/j.actamat.2007.11.002Suche in Google Scholar

[21] M.Winning: Philos. Mag.87 (2007) 5017.10.1080/14786430701601759Suche in Google Scholar

[22] M.Winning, A. D.Rollett: Acta Mater.53 (2005) 2901.Suche in Google Scholar

[23] M.Winning, G.Gottstein, L.S.Shvindlerman: Acta Mater.50 (2002) 353.Suche in Google Scholar

[24] D.A.Molodov, A.V.Ivanov, G.Gottstein: Acta Mater.55 (2007) 1843.Suche in Google Scholar

[25] D.A.Molodov, T.Gorkaya, G.Gottstein: Mater. Sci. Forum558–559 (2007) 927.Suche in Google Scholar

[26] J.W.Cahn, J.E.Taylor: Acta Mater.52 (2004) 4887.Suche in Google Scholar

[27] S.G.Srinivasan, J.W.Cahn, in: Science and Technology of Interfaces, TMS, (2002) 3.Suche in Google Scholar

[28] T.Zhu, J.Li, A.Samanta, H.G.Kim, S.Suresh: Proc. Nat. Acad. Sci. USA104 (2007) 3031.Suche in Google Scholar

[29] K.J.Hemker, W.N.Sharpe: Ann. Rev. Mater. Res.37 (2007) 93.Suche in Google Scholar

[30] D.S.Gianola. C.Eberl, X.M.Cheng, K.J.Hemker: Advanced Materials20 (2008) 303.Suche in Google Scholar

[31] K.Zhang, J.R.Weertman, J.A.Eastman: Appl. Phys. Lett.87 (2005) 061921.Suche in Google Scholar

[32] J.W.Morris, M.Jin, M.A.Minor: Mater. Sci. Eng. A462 (2007) 412.Suche in Google Scholar

[33] J.E.Taylor, J.W.Cahn, C.A.Handwerker, in: R.G.Chambers, J.E.Enderby, A.Keller, A.R.Lang, J.W.Steeds (Eds.), Sir Charles Frank, OBE, FRS, An eightieth birthday tribute, Adam Hilger, New York (1991) 112.Suche in Google Scholar

[34] J.W.Gibbs, in: The Scientific Papers of J.W. Gibbs, Vol. 1, Longmans Green, London (1906) 244.Suche in Google Scholar

[35] J.E.Bailey, P.B.Hirsch: Proc. R. Soc. Lond.A267 (1962) 11.Suche in Google Scholar

[36] P.S.Bite, W.B.Hutchinson: Scripta Mater.36 (1997) 199.Suche in Google Scholar

[37] M.A.Martorano, H.R.Z.Sandim, M.A.Fortes, A.F.Padilha, Scripta Mater.56 (2007) 903906.10.1016/j.scriptamat.2007.01.032Suche in Google Scholar

[38] F.Inoko, T.Fufita, K.Akizoma: Scripta Metall.21 (1987) 1399.Suche in Google Scholar

[39] F.Inoko, M.Kobayashi, S.Kawaguchi: Scripta Metall.21 (1987) 1405.Suche in Google Scholar

[40] F.Inoko, M.Kobayashi: J. de Physique Colloq.49 (1988) C5605.10.1051/jphyscol:1988576Suche in Google Scholar

[41] F.Inoko, T.Yoshikawa: Mater. Sci. Forum204-206 (1996) 379.Suche in Google Scholar

[42] W. B.Hutchinson: Acta Metall.37 (1989) 1047.10.1016/0001-6160(89)90101-6Suche in Google Scholar

[43] H.Paul: Mater. Chem. Phys.81 (2003) 531.10.1111/j.1751-0813.2003.tb12878.xSuche in Google Scholar PubMed

[44] H.Paul, J.H.Driver, J.Mogiel, A.Lens, A.Bydalek, M.Bijak: J. Microscopy223 (2006) 264.Suche in Google Scholar

Received: 2008-9-19
Accepted: 2009-1-19
Published Online: 2013-06-11
Published in Print: 2009-04-01

© 2009, Carl Hanser Verlag, München

Artikel in diesem Heft

  1. Contents
  2. Contents
  3. Editorial
  4. Prof. Dr. Günter Gottstein
  5. Feature
  6. Interface Migration in Metals (IMM):“Vingt Ans Après” (Twenty Years Later)
  7. Basic
  8. On the solute-defect interaction in the framework of a defactant concept
  9. A new model of dynamic recovery for Stage III of pure fcc metals without cross slip
  10. Sequence of distinct microyielding stages of the monocrystalline nickel-base superalloy CMSX-6 at high temperatures
  11. Comparison of texture evolution in fcc metals predicted by various grain cluster homogenization schemes
  12. Recrystallization initiated by low-temperature grain boundary motion coupled to stress
  13. Sub-grain boundary mobilities during recovery of binary Al–Mn alloys
  14. Concentration phase transition associated with grain boundary segregation in systems with restricted solubility
  15. Second-order faceting–roughening of the tilt grain boundary in zinc
  16. A model of grain boundary diffusion in polycrystals with evolving microstructure
  17. Linear measures for polyhedral networks
  18. Testing a curvature driven moving finite element grain growth model with the generalized three dimensional von Neumann relation
  19. Grain-boundary source/sink behavior for point defects: An atomistic simulation study
  20. Applied
  21. Deformation modes and anisotropy in magnesium alloy AZ31
  22. Control of recrystallisation texture and texture-related properties in industrial production of aluminium sheet
  23. The combined effect of static recrystallization and twinning on texture in magnesium alloys AM30 and AZ31
  24. Comparison of damage development depending on the local microstructure in low alloyed Al-TRIP-steels, IF steel and a DP steel
  25. Nanoindentation of Ti50Ni48Fe2 and Ti50Ni40Cu10 shape memory alloys
  26. Early detection of crack initiation sites in TiAl alloys during low-cycle fatigue at high temperatures utilizing digital image correlation
  27. Superplastic failure mode in ultrafine grained magnesium alloy AZ31
  28. High temperature magnetic strengthening in iron-based alloys: Magnetic effects on deformation and fracture, revisited
  29. Notification
  30. DGM News
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