Calculation of crystallographic texture due to displacive transformations
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Abstract
Displacive transformations involve the disciplined motion of atoms. As a result, there are clearly defined relationships between all aspects of the parent and product lattices. The theory for this is well established but has not been exploited in the calculation of transformation textures. This paper is a critical assessment of the methods for the estimation of crystallographic textures during the displacive transformation of austenite into martensite, bainite or Widmanstätten ferrite in steels. The discussion is limited to the case where austenite is not in a plastically deformed state prior to its transformation.
References
[1] E.Schmid, W.Boas: Plasticity of Crystals (translated from the 1935 edition of Kristalplastizitaet): F.A. Hughes and Co., London, U.K., 1950.Search in Google Scholar
[2] D.Dorner, S.Zaefferer, L.Lahn, D.Raabe: J. Magn. Mater.304 (2006) 183–186.10.1016/j.jmmm.2006.02.116Search in Google Scholar
[3] L.Fionova, T.Watanabe, Y.Lisovski: ISIJ Int.36 (1996) 613–623.10.2355/isijinternational.36.613Search in Google Scholar
[4] B.A.Cheadle, S.A.Aldridge, C.E.Ells: J. Nucl. Mater.34 (1970) 119–124.10.1016/0022-3115(70)90019-XSearch in Google Scholar
[5] F.J.Humphreys: Mater. Sci. Technol.15 (1999) 37–44.10.1179/026708399773002791Search in Google Scholar
[6] H.K.D.H.Bhadeshia: Mater. Sci. Eng. A223 (1997) 64–77.10.1016/S0921-5093(96)10507-4Search in Google Scholar
[7] I.Kanno, S.Fujii, T.Kamada, R.Takayama: Appl. Phys. Lett.70 (1997) 1378–1380.10.1063/1.118583Search in Google Scholar
[8] B.A.Glowacki, M.E.Vickers, N.A.Rutter, E.Maher, F.Pasotti, A.Baldini, R.Major: J. Mater. Sci.37 (2002) 157–168.10.1023/A:1013174615103Search in Google Scholar
[9] Z.G.Ye, A.M.Janner, H.Schmid: J. of Physics – Cond. Matter9 (1997) 2607–2621.10.1088/0953-8984/9/12/009Search in Google Scholar
[10] H.J.Bunge, M.Humbert, P.I.Welch: Scripta Met.17 (1403–1405).10.1016/0036-9748(83)90363-0Search in Google Scholar
[11] E.C.Bain: Trans. AIME70 (1924) 25–46.Search in Google Scholar
[12] J.S.Bowles, C.M.Wayman: Metall. Trans.3 (1972) 1113–1121.10.1007/BF02642442Search in Google Scholar
[13] M.Suezawa: Mater. Sci. Eng.48 (1981) 255–260.10.1016/0025-5416(81)90010-0Search in Google Scholar
[14] J.W.Christian: Thermodynamics and kinetics of martensite: in: G.B. Olson, M. Cohen (Eds.), International Conference on Martensitic Transformations ICOMAT '79: 1979: pp. 220–234.Search in Google Scholar
[15] J.S.Bowles, J.K.MacKenzie: Acta Met.2 (1954) 129–137.10.1016/0001-6160(54)90102-9Search in Google Scholar
[16] J.K.Mackenzie, J.S.Bowles: Acta Met.2 (1954) 138–147.10.1016/0001-6160(54)90103-0Search in Google Scholar
[17] M.S.Wechsler, D.S.Lieberman, T.A.Read: Trans. AIME J. Metals197 (1953) 1503–1515.Search in Google Scholar
[18] H.K.D.H.Bhadeshia: Geometry of Crystals: 2nd edition, Institute of Materials, 2001.Search in Google Scholar
[19] J.W.Christian: Metall. Trans. A13 (1982) 509–538.10.1007/BF02644415Search in Google Scholar
[20] W.B.Hutchinson, L.Ryde, P.S.Bate: Mat. Sci. Forum495–497 (2005) 1141–1149.10.4028/www.scientific.net/MSF.495-497.1141Search in Google Scholar
[21] S.Kundu, H.K.D.H.Bhadeshia: Scripta Mater.55 (2006) 779–781.10.1016/j.scriptamat.2006.07.021Search in Google Scholar
[22] L.Kestens, R.Decocker, R.Petro: Mat. Sci. Forum408–412 (2002) 1173–1178.10.4028/www.scientific.net/MSF.408-412.1173Search in Google Scholar
[23] H.Miyaji, E.-I.Furubayashi: Textures and Microstructure12 (1990) 189–197.10.1155/TSM.12.189Search in Google Scholar
[24] E.-I.Furubayashi, H.Miyaji, M.Nobuki: Trans. ISIJ27 (1987) 513–519.10.2355/isijinternational1966.27.513Search in Google Scholar
[25] R.P.L.Kestens, Y.Houbaert: ISIJ Int.43 (2003) 1444–1452.10.2355/isijinternational.43.1444Search in Google Scholar
[26] B.Brückner, G.Gottstein: ISIJ Int.41 (2001) 468–477.10.2355/isijinternational.41.468Search in Google Scholar
[27] P.Bate, B.Hutchinson: Acta Mater.48 (2000) 3183–3192.10.1016/S1359-6454(00)00106-3Search in Google Scholar
[28] G.Nolze: Z. Metallkd.95 (2004) 744–755.10.3139/146.018017Search in Google Scholar
[29] S.Kundu: Transformation strain and crystallographic texture in steels, Ph.D. thesis, University of Cambridge, Cambridge, U.K. (2007).Search in Google Scholar
[30] S.Kundu, K.Hase, H.K.D.H.Bhadeshia: Proc. Roy. Soc. A463 (2007) 2309–2328.10.1098/rspa.2007.1881Search in Google Scholar
[31] K.M.Knowles, D.A.Smith, W.A.T.Clark: Scripta Met.16 (1982) 413–416.10.1016/0036-9748(82)90163-6Search in Google Scholar
[32] J.W.Christian: Theory of Transformations in Metal and Alloys, Part II: 3rd Edition: Pergamon Press, 2003.Search in Google Scholar
[33] D.W.Suh, H.N.Han, S.J.Kim: ISIJ Int.46 (2006) 341–343.10.2355/isijinternational.46.341Search in Google Scholar
[34] Y.Higo, F.Lecroisey, T.Mori: Acta Met.22 (1974) 313–323.10.1016/0001-6160(74)90170-9Search in Google Scholar
[35] J.R.Patel, M.Cohen: Acta Met.1 (1953) 531–538.10.1016/0001-6160(53)90083-2Search in Google Scholar
[36] H.N.Han, D.W.Suh: Acta Mater.51 (2003) 4907–4917.10.1016/S1359-6454(03)00333-1Search in Google Scholar
[37] H.K.D.H.Bhadeshia, S.A.David, J.M.Vitek, R.W.Reed: Mat. Sci. Techn.7 (1991) 686–698.10.1179/026708391790184915Search in Google Scholar
[38] A.Matsuzaki, H.K.D.H.Bhadeshia, H.Harada: Acta Met. Mater.42 (1994) 1081–1090.10.1016/0956-7151(94)90125-2Search in Google Scholar
[39] H.K.D.H.Bhadeshia, in: H.Cerjak, H.K.D.H.Bhadeshia (Eds.), Mathematical Modelling of Weld Phenomena – II: Institute of Materials, London, U.K., 1995: pp. 71–118.Search in Google Scholar
[40] J.W.Stewart, R.C.Thomson, H.K.D.H.Bhadeshia: J. Mat. Sci.29 (1994) 6079–6084.10.1007/BF00354545Search in Google Scholar
[41] S.Kundu, H.K.D.H.Bhadeshia: Scripta Mater.57 (2007) 869–872.10.1016/j.scriptamat.2007.06.056Search in Google Scholar
© 2008, Carl Hanser Verlag, München
Articles in the same Issue
- Contents
- Contents
- Editorial
- Horst Cerjak – Emeritus Professor
- Review
- Calculation of crystallographic texture due to displacive transformations
- Basic
- Ferrite transformation from oxide–steel interface in HAZ-simulated C–Mn steel
- Influence of metastable tetragonal ZrO2-reinforcements on the properties of MoSi2-composites
- Joining strategies for open-porous metallic foams
- Precipitation behaviour of an Fe–Co–Mo-alloy during non-isothermal ageing
- Characterization of δ-phase in superalloy Allvac 718PlusTM
- Direct observation of phase transformations in the simulated heat-affected zone of a 9Cr martensitic steel
- Effect of boron on creep deformation behavior and microstructure evolution in 9% Cr steel at 650°C
- Effect of stress on the creep deformation of ASME Grade P92/T92 steels
- Applied
- Assessment of creep rupture life of weldments of martensitic steels
- Computational analysis of the precipitation kinetics in a complex tool steel
- Predicted precipitate back-stress and creep rupture strength of the advanced 9–12% Cr steel COST E2
- Compositional characterisation and thermodynamic modelling of nitride precipitates in a 12% Cr steel
- The L2 norm of the deviation between the measured and computed transient displacement field in a test weld
- Toward reliable calculations of heat and plastic flow during friction stir welding of Ti-6Al-4V alloy
- Notifications
- DGM News
Articles in the same Issue
- Contents
- Contents
- Editorial
- Horst Cerjak – Emeritus Professor
- Review
- Calculation of crystallographic texture due to displacive transformations
- Basic
- Ferrite transformation from oxide–steel interface in HAZ-simulated C–Mn steel
- Influence of metastable tetragonal ZrO2-reinforcements on the properties of MoSi2-composites
- Joining strategies for open-porous metallic foams
- Precipitation behaviour of an Fe–Co–Mo-alloy during non-isothermal ageing
- Characterization of δ-phase in superalloy Allvac 718PlusTM
- Direct observation of phase transformations in the simulated heat-affected zone of a 9Cr martensitic steel
- Effect of boron on creep deformation behavior and microstructure evolution in 9% Cr steel at 650°C
- Effect of stress on the creep deformation of ASME Grade P92/T92 steels
- Applied
- Assessment of creep rupture life of weldments of martensitic steels
- Computational analysis of the precipitation kinetics in a complex tool steel
- Predicted precipitate back-stress and creep rupture strength of the advanced 9–12% Cr steel COST E2
- Compositional characterisation and thermodynamic modelling of nitride precipitates in a 12% Cr steel
- The L2 norm of the deviation between the measured and computed transient displacement field in a test weld
- Toward reliable calculations of heat and plastic flow during friction stir welding of Ti-6Al-4V alloy
- Notifications
- DGM News