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In the present investigation a wrought magnesium alloy AZ31 was successfully processed by the accumulative roll-bonding (ARB) at gradient temperature up to six cycles with the lowest temperature of 250 ℃.This is performed through different thermomechanical processing routes (different ARB cycles at different temperatures of 350-200 ℃).The microstructures and mechanical properties were investigated.The results indicate that significant grain refinement is observed after the first two cycles at the highest ARB temperature as a result of dynamic recrystallization,which is necessary for the subsequently ARB cycles at relatively lower temperature with the aim to restrict grain growth.No significant finer grain size was observed through the fifth and sixth cycles while the microstructure homogeneity is further improved.The grain structure can be effectively refined at lower ARB processing temperature and higher cycles.The resulting material exhibited high strength and relatively high ductility at ambient temperature when ARB deformed above 250 ℃.The mechanicai properties of the ARB deformed materials are strongly dependent on several main factors:the amount and the homogeneity of strain achieved,grain size and microstructure homogeneity,textures developed during ARB and interface bonding quality.

参考文献

[1] Q. Yang;A.K. Ghosh .Deformation behavior of ultrafine-grain (UFG) AZ31B Mg alloy at room temperature[J].Acta materialia,2006(19):5159-5170.
[2] M. Eddahbi;J.A. del Valle;M.T. Perez-Prado .Comparison of the microstructure and thermal stability of an AZ31 alloy processed by ECAP and large strain hot rolling[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2005(0):308-311.
[3] M.T. Perez-Prado;J.A. del Valle;O.A. Ruano .Grain refinement of Mg-Al-Zn alloys via accumulative roll bonding[J].Scripta materialia,2004(11):1093-1097.
[4] Q. Yang;A.K. Ghosh .Production of ultrafine-grain micro structure in Mg alloy by alternate biaxial reverse corrugation[J].Acta materialia,2006(19):5147-5158.
[5] N. Tsuji;Y. Ito;Y. Saito;Y. Minamino .Strength and ductility of ultrafine grained aluminum and iron produced by ARB and anealing[J].Scripta materialia,2002(12):893-899.
[6] S. Tamimi;M. Ketabchi;N. Parvin .Microstructural evolution and mechanical properties of accumulative roll bonded interstitial free steel[J].Materials & design,2009(7):2556-2562.
[7] J.A. del Valle;M.T. Perez-Prado;O.A. Ruano .Accumulative roll bonding of a Mg-based AZ61 alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2005(0):353-357.
[8] S.M. Fatemi-Varzaneh;A. Zarei-Hanzaki;M. Naderi;Ali A. Roostaei .Deformation homogeneity in accumulative back extrusion processing of AZ31 magnesium alloy[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2010(1):207-214.
[9] M. T. Perez-Prado;J. A. del Valle;J. M. Contreras;O. A. Ruano .Microstructural evolution during large strain hot rooling of an AM60 Mg alloy[J].Scripta materialia,2004(5):661-665.
[10] X. Huang;N. Kamikawa;N. Hansen.Strengthening mechanisms in nanostructured aluminum[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2008:102-104.
[11] N. Hansen;X. Huang;R. Ueji;N. Tsuji .Structure and strength after large strain deformation[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2004(0):191-194.
[12] T. Al-Samman;G. Gottstein .Dynamic recrystallization during high temperature deformation of magnesium[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2008(1/2):411-420.
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