强磁场对Fe-C-W合金钢马氏体组织回复的影响Effect of high magnetic field on recovery of martensitic structure in a Fe-C-W alloy steel
吴光辉,蔡焕,昝启飞,胡锋
摘要(Abstract):
强磁场作为重要的金属相变影响因素,可以明显提高奥氏体到马氏体相变的开始温度并影响最终的马氏体微观组织。然而,关于强磁场对马氏体回复影响的研究甚少。研究了强磁场对Fe-C-W合金钢在不同温度回火1 h后马氏体组织回复的影响。结果表明,强磁场的施加使基体中碳化物的数密度明显增加,其原因为强磁场增大了碳化物的磁化强度,降低了其磁自由能,使其形核驱动力增加。低温200℃回火时强磁场对马氏体回复的抑制作用不明显。当回火温度升高至500℃时,12 T强磁场的施加,明显增强了碳化物对位错运动的阻碍作用,大大抑制了位错的回复,使基体中残留的位错密度提高了约27.5%。高密度的位错明显增加了小角度晶界的含量,使马氏体板条平均宽度降低了约137 nm,表明强磁场的施加明显抑制了马氏体的回复。
关键词(KeyWords): 强磁场;马氏体回复;碳化物;位错;小角度晶界
基金项目(Foundation): 湖南省“小荷”人才计划;; 湖南省芙蓉计划湖湘青年英才项目(2023RC3254)
作者(Author): 吴光辉,蔡焕,昝启飞,胡锋
DOI: 10.13289/j.issn.1009-6264.2023-0490
参考文献(References):
- [1] 杨钢,冯光宏.稳恒磁场对低碳锰铌钢γ→α相变的影响[J].钢铁研究学报,2000,12(5):31-35.YANG Gang,FENG Guang-hong.Effect of constant magnetic field on γ→α phase transformation for low carbon Mn-Nb steel[J].Journal of Iron and Steel Research,2000,12(5):31-35.
- [2] 王磊,刘杨,宋秀,等.金属耦合场处理研究进展与趋势[J].材料热处理学报,2022,43(8):1-12.WANG Lei,LIU Yang,SONG Xiu,et al.Research progress and trend of coupled field treatment for metals[J].Transactions of Materials and Heat Treatment,2022,43(8):1-12.
- [3] 耿俊昭,刘天成,李立军,等.纵向磁场退火处理对Fe73.7Si15.3Cu1Nb3B7合金组织结构和性能的影响[J].材料热处理学报,2022,43(10):128-135.GENG Jun-zhao,LIU Tian-cheng,LI Li-jun,et al.Effect of longitudinal magnetic field annealing on microstructure and properties of Fe73.7Si15.3Cu1Nb3B7 alloy[J].Transactions of Materials and Heat Treatment,2022,43(10):128-135.
- [4] San Martin D,Van Dijk N H,Jiménez-Melero E,et al.Real-time martensitic transformation kinetics in maraging steel under high magnetic fields[J].Materials Science and Engineering A,2010,527(20):5241-5245.
- [5] Omori T,Watanabe K,Umetsu R Y,et al.Martensitic transformation and magnetic field-induced strain in Fe-Mn-Ga shape memory alloy[J].Applied Physics Letters,2009,95:082508.
- [6] Choi J,Fukuda T,Kakeshita T.Effect of magnetic field on isothermal martensitic transformation in a sensitized SUS304 austenitic stainless steel[J].Journal of Alloys and Compounds,2013,577:S605-S608.
- [7] Zhang Y D,Gey N,He C S,et al.High temperature tempering behaviors in a structural steel under high magnetic field[J].Acta Materialia,2004,52(12):3467-3474.
- [8] 夏志新,张弛,杨志刚.强磁场对低活化钢中析出行为和力学性能的影响[J].金属学报,2011,47(6):713-719.XIA Zhi-xin,ZHANG Chi,YANG Zhi-gang.Effect of high magnetic field on precipitation behaviors and mechanical properties in reduced activation steels[J].Acta Metallurgica Sinica,2011,47(6):713-719.
- [9] Hou T P,Li Y,Zhang J J,et al.Effect of magnetic field on the carbide precipitation during tempering of a molybdenum-containing steel[J].Journal of Magnetism and Magnetic Materials,2012,324(5):857-861.
- [10] Zhao Y J,Ren X P,Hu Z L,et al.Effect of tempering on microstructure and mechanical properties of 3Mn-Si-Ni martensitic steel[J].Materials Science and Engineering A,2018,711:397-404.
- [11] Furuhara T,Obayashi K K,Maki T.Control of cementite precipitation in lath martensite by rapid heating and tempering[J].ISIJ International,2004,44(11):1937-1944.
- [12] Cerjak H,Hofer P,Schaffernak B.Microstructural aspects on the creep behaviour of advanced power plant steels[J].Key Engineering Materials,2000,171-174:453-460.
- [13] Shtansky D V,Inden G.Phase transformation in Fe-Mo-C and Fe-W-C steels—I.The structural evolution during tempering at 700 ℃[J].Acta Materialia,1997,45(7):2861-2878.
- [14] Timokhina I B,Beladi H,Xiong X Y,et al.Nanoscale microstructural characterization of a nanobainitic steel[J].Acta Materialia,2011,59(14):5511-5522.
- [15] Hou T P,He G,Wu K M,et al.Magnetic field induced precipitation behaviour of (Fe,Mo)6C alloy carbides in molybdenum alloyed steel[J].Materials Science and Technology,2014,30(8):906-910.
- [16] Elena Pereloma D E.Phase Transformations in Steels[M].English:Woodhead Publishing,2012.
- [17] Hou T P,Wu K M,Liu W M,et al.Magnetism and high magnetic-field-induced stability of alloy carbides in Fe-based materials[J].Scientific Reports,2018,8(1):3049.
- [18] Hou T P,Li Y,Wu K M.Effect of high magnetic field on alloy carbide precipitation in an Fe-C-Mo alloy[J].Journal of Alloys and Compounds,2012,527:240-246.
- [19] Zhang Y D,Zhao X,Bozzolo N,et al.Low temperature tempering of a medium carbon steel in high magnetic field[J].ISIJ International,2005,45(6):913-917.
- [20] Wu G H,Hou T P,Wu K M,et al.Influence of high magnetic field on carbides and the dislocation density during tempering of high Chromium-containing steel[J].Journal of Magnetism and Magnetic Materials,2019,479:43-49.
- [21] He B B,Hu B,Yen H W,et al.High dislocation density-induced large ductility in deformed and partitioned steels[J].Science,2017,357(6355):1029-1032.
- [22] Norfleet D M,Dimiduk D M,Polasik S J,et al.Dislocation structures and their relationship to strength in deformed nickel microcrystals[J].Acta Materialia,2008,56(13):2988-3001.
- [23] Keyhani A,Roumina R,Mohammadi S.An efficient computational technique for modeling dislocation-precipitate interactions within dislocation dynamics[J].Computational Materials Science,2016,122:281-287.
- [24] Rhee M,Zbib H M,Hirth J P,et al.Models for long/short-range interactions and cross slip in 3D dislocation simulation of BCC single crystals[J].Modelling and Simulation in Materials Science and Engineering,1998,6(4):467-492.
- [25] Wang F,Qian D S,Hua L,et al.Effect of high magnetic field on the microstructure evolution and mechanical properties of M50 bearing steel during tempering[J].Materials Science and Engineering A,2020,771:138623.
- [26] 刘向艳,崔鸿,李刚,等.回火温度对渗碳钢18Cr2Ni4WA组织和硬度的影响[J].特殊钢,2019,40(5):57-59.LIU Xiang-yan,CUI Hong,LI Gang,et al.Effect of tempering temperature on microstructure and hardness of 18Cr2Ni4WA carburized steel[J].Special Steel,2019,40(5):57-59.
- [27] Chatterjee A,Chakrabarti D,Moitra A,et al.Effect of normalization temperatures on ductile-brittle transition temperature of a modified 9Cr-1Mo steel[J].Materials Science and Engineering A,2014,618:219-231.
- [28] Zhang L C,Gu Y J,Xiang Y.Energy of low angle grain boundaries based on continuum dislocation structure[J].Acta Materialia,2017,126:11-24.
- [29] Wu G H,Hou T P,Li Z H,et al.Effect of high magnetic field on the recovery of tempered martensite[J].Progress in Natural Science:Materials International,2020,30(1):134-137.
文章评论(Comment):
|
||||||||||||||||||
|
||||||||||||||||||