本文综述了纳米晶/微米晶复相金属材料的发展历程、微观组织设计、制备方法及其力学性能与变形机制.概述了现有材料体系和制备方法的优点与不足,指出开发新工艺和进一步优化纳米晶/微米晶复相金属材料的综合性能是未来的发展趋势.
参考文献
[1] | GLEITER H;MARQUARDTP .Nanocrystallinestructures an approach to new materials[J].Zeitschrift fur Metallkunde,1984,75(04):263-267. |
[2] | 聂飞龙,魏世成,郑玉峰.三维块体纳米晶材料的制备及应用[J].材料导报,2008(11):1-7,15. |
[3] | KOCH C C.Nanostructured Materials:Processing,Properties,and Applications[M].Norwich:William Andrew Pub,2007 |
[4] | J. R. Weertman;D. Farkas;K. Hemker .Structure and Mechanical Behavior of bulk Nanocrystalline Materials[J].MRS bulletin,1999(2):44-50. |
[5] | TELLKAMP V L;MELMED A;1AVERNIA E J .Mechanical behavior and microstructure of a thermally stable bulk nanostruc tured A1 alloy[J].Metallurgical and Materials Transactions A:Physical Metallurgy and Materials Science,2001,32(09):23352343. |
[6] | R. W. HAYES;R. RODRIGUEZ;E. J. LAVERNIA .THE MECHANICAL BEHAVIOR OF A CRYOMILLED Al-10Ti-2Cu ALLOY[J].Acta materialia,2001(19):4055-4068. |
[7] | SEMIATIN S L;JATA K V;UCHIC M D et al.Plastic flow and fracture behavior of an A1 Ti Cu nanocomposite[J].Scripta Materialia,2001,44(03):395400. |
[8] | Wang Y;Chen M;Zhou F;Ma E .High tensile ductility in a nanostructured metal.[J].Nature,2002(6910):912-915. |
[9] | MA E .Instabilities and ductility of nanocrystalline and uhrafinegrained metals[J].Scripta Materialia,2003,49(07):663-668. |
[10] | Y. M. Wang;E. Ma .Three strategies to achieve uniform tensile deformation in a nanostructured metal[J].Acta materialia,2004(6):1699-1709. |
[11] | FANG T H;LI W L;TAO N R et al.Revealing extraordinary intrinsic tensile plasticity in gradient nano-grained copper[J].Science,2011,331(6024):1587-1590. |
[12] | D.K. Yang;P.D. Hodgson;C.E. Wen .Simultaneously enhanced strength and ductility of titanium via multimodal grain structure[J].Scripta materialia,2010(9):941-944. |
[13] | Yonghao Zhao;Troy Topping;John F. Bingert;Jeremy J. Thornton;Andrea M. Dangelewicz;Ying Li;Wei Liu;Yuntian Zhu;Yizhang Zhou;Enrique J. Lavernia .High Tensile Ductility and Strength in Bulk Nanostructured Nickel[J].Advanced Materials,2008(16):3028-3033. |
[14] | A bimodal bulk ultra-fine-grained nickel: Experimental and micromechanical investigations[J].Mechanics of materials,2010(5):p.522. |
[15] | X.F. Zhang;T. Fujita;D. Pan;J.S. Yu;T. Sakurai;M.W. Chen .Influences of grain size and grain boundary segregation on mechanical behavior of nanocrystalline Ni[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2010(9):2297-2304. |
[16] | CHOKSHI A H;MUKHERJEE A K .A topological study of superplastic deformation in an Al-Li alloy with a bimodal grain size distribution[J].Metallurgical and Materials Transactions,1988,19(06):1621-1624. |
[17] | R. W. HAYES;R. RODRIGUEZ;E. J. LAVERNIA .THE MECHANICAL BEHAVIOR OF A CRYOMILLED Al-10Ti-2Cu ALLOY[J].Acta materialia,2001(19):4055-4068. |
[18] | LEE Z;RADMILOVIC V;AHN B et al.Tensile deformation and fracture mechanism of bulk bimodal ultrafine-grained A1-Mg alloy[J].Metallurgical and Materials Transactions A:Physical Metallurgy and Materials Science,2009,41(04):795-801. |
[19] | V.L. TELLKAMP;A. MELMED;E.J. LAVERNIA .Mechanical Behavior and Microstructure of a Thermally Stable Bulk Nanostructured Al Alloy[J].Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science,2001(9):2335-2343. |
[20] | David Witkin;Z. Lee;R. Rodriguez;S. Nutt;E. Lavernia .Al-Mg alloy engineered with bimodal grain size for high strength and increased ductility[J].Scripta materialia,2003(4):297-302. |
[21] | LEE D G;LEE Y H;LEE C S et al.Effects of volume fraction of tempered martensite on dynamic deformation properties of a Ti-6A1 4V alloy having a bimodal microstructure[J].Metallurgical and Materials Transactions A:Physical Metallurgy and Materials Science,2005,36(03):741748. |
[22] | E.W. Lui;W. Xu;X. Wu .Multiscale two-phase Ti-Al with high strength and plasticity through consolidation of particles by severe plastic deformation[J].Scripta materialia,2011(8):711-714. |
[23] | XIA S;VYCHIGZHANINA L;WANG J et al.Controllable bimodal structures in hypo-eutectoid Cu-A1 alloy for both high strength and tensile ductility[J].Materials Science and Engineering A:Structural Materials Properties Microstructure and Processing,2008,490(1 2):471476. |
[24] | Xia, S.H.;Wang, J.T. .A micromechanical model of toughening behavior in the dual-phase composite[J].International Journal of Plasticity,2010(10):1442-1460. |
[25] | H. Azizi-Alizamini;M. Militzer;W. J. Poole .A novel technique for developing bimodal grain size distributions in low carbon steels[J].Scripta materialia,2007(12):1065-1068. |
[26] | S. M. Hosseini;A. Najafizadeh;A. Kermanpur .Producing the nano/ultrafine grained low carbon steel by martensite process using plane strain compression[J].Journal of Materials Processing Technology,2011(2):230-236. |
[27] | F. Dalla Torre;H. Van Swygenhoven;M. Victoria .Nanocrystalline electrodeposited Ni: microstructure and tensile properties[J].Acta materialia,2002(15):3957-3970. |
[28] | DA WEI W;HAI-BOJ;JIEY et al.Mechanical reinforcement and piezoelectric properties of PZT ceramics embedded with nano crystalline[J].Chinese Physics Letters,2010,27:047701. |
[29] | HAN B Q;LEE Z;WITKIN D et al.Deformation behavior of bimodal nanostructured 5083 A1 alloys[J].Metallurgical and Materials Transactions A:Physical Metallurgy and Materials Science,2005,36(04):957965. |
[30] | D.K. Yang;P.D. Hodgson;C.E. Wen .Simultaneously enhanced strength and ductility of titanium via multimodal grain structure[J].Scripta materialia,2010(9):941-944. |
[31] | WANGJ T;XIA S H;VYCHIGZHANINA L V et al.Controllable bimodal structures in hypo eutectoid Cu-A1 alloy for both high strength and tensile ductility[J].Materials Science and Engineering A:Structural Materials Properties Microstructure and Processing,2008,490(1-2):471476. |
[32] | Jia, D;Ma, E;Ramesh, KT .Failure mode and dynamic behavior of nanophase iron under compression[J].Scripta materialia,1999(1):73-78. |
[33] | Kim KB;Das J;Baier F;Eckert J .Propagation of shear bands in Ti66.1Cu8Ni4.8Sn7.2Nb13.9 nanostructure-dendrite composite during deformation[J].Applied physics letters,2005(17):1909-1-1909-3-0. |
[34] | LEE Z;RADMILOVIC V;AHN B et al.Tensile deformation and fracture mechanism of bulk bimodal ultrafine-grained A1-Mg alloy[J].Metallurgical and Materials Transactions A:Physical Metallurgy and Materials Science,2010,41(04):795-801. |
[35] | 夏少华 .微米晶/超细晶复合增塑及其机制研究[D].南京理工大学,2010. |
[36] | LAP Q;WEI Y P;YANG Y et al.Effect of annealing on mi crostructure and mechanical properties of bulk nanocrystalline Fe3 AI alloy with 5 wt.% Cu prepared by aluminothermic reaction[J].Materials Science and Engineering A:Structural Materials Properties Microstructure and Processing,2011,528(24):7140-7148. |
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