材料工程, 2017, 45(2): 119-128.
10.11868/j.issn.1001-4381.2015.000694
近β钛合金高温压缩变形过程中流变软化行为研究进展

刘少飞 1, , 王柯 2,

1.西安工程大学工程训练中心 ,西安,710048;
2.重庆大学材料科学与工程学院 ,重庆,400044

综述了近β钛合金高温压缩变形过程中流变软化行为的影响因素、流变软化机制及其分析方法以及基于流变软化机制的本构方程的发展,重点分析了变形工艺参数以及原始微观组织对流变软化行为的影响规律,此外,讨论了动态回复、动态再结晶、变形热等软化机制对软化现象的贡献,并提出了近β钛合金高温变形过程中关于流变软化现象亟待解决的问题,指出定量化及物理模型化是未来近β钛合金高温变形过程中流变软化现象的重要发展方向.
引用: 刘少飞, 王柯 近β钛合金高温压缩变形过程中流变软化行为研究进展. 材料工程, 2017, 45(2): 119-128. doi: 10.11868/j.issn.1001-4381.2015.000694
参考文献:
[1] Chen, W.;Sun, Q.;Xiao, L.;Sun, J..Deformation-induced microstructure refinement in primary α phase-containing Ti-10V-2Fe-3Al alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,201027/28(27/28):7225-7234.
[2] Li, C.;Zhang, X.-Y.;Zhou, K.-C.;Peng, C.-Q..Relationship between lamellar α evolution and flow behavior during isothermal deformation of Ti-5Al-5Mo-5V-1Cr-1Fe near Β titanium alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2012:668-674.
[3] 崔雪飞;米绪军;林晨光;惠松晓;魏衍广;陶海明.Ti-5Mo-5V-1Cr-3Al合金的热压缩变形行为研究[J].材料工程,2013(12):19-26.
[4] Martin Jackson;Richard Dashwood;Leo Christodoulou.The Microstructural Evolution of Near Beta Alloy Ti-10V-2Fe-3Al during Subtransus Forging[J].Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science,20055(5):1317-1327.
[5] R. R. Boyer;R. D. Briggs.The Use of β Titanium Alloys in the Aerospace Industry[J].Journal of Materials Engineering and Performance,20056(6):681-685.
[6] P.-J. Arrazola;A. Garay;L.-M. Iriarte;M. Armendia;S. Marya;F. Le Maitre.Machinability of titanium alloys (Ti6Al4V and Ti555.3)[J].Journal of Materials Processing Technology,20095(5):2223-2230.
[7] 于兰兰;毛小南;赵永庆;张鹏省;袁少冲.热变形行为与BT22钛合金的组织演变[J].稀有金属材料与工程,2007(3):505-508.
[8] 樊江昆;寇宏超;唐斌;常辉;李金山.Ti-7333合金β锻动态再结晶行为[J].科技导报,2013(5):44-48.
[9] J.K. Fan;J.S. Li;H.C. Kou.The interrelationship of fracture toughness and microstructure in a new near β titanium alloy Ti-7Mo-3Nb-3Cr-3Al[J].Materials Characterization,2014:93-99.
[10] Fan, Jiangkun;Li, Jinshan;Kou, Hongchao;Hua, Ke;Tang, Bin;Zhang, Yudong.Influence of solution treatment on microstructure and mechanical properties of a near beta titanium alloy Ti-7333[J].Materials & design,2015Oct.15(Oct.15):499-507.
[11] Xue Zhang;Hongchao Kou;Jinshan Li.Evolution of the secondary a phase morphologies during isothermal heat treatment in Ti-7333 alloy[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2013:516-522.
[12] 祖利国 .Ti-5Al-5Mo-5V-1Cr-1Fe近β钛合金的热变形行为及加工图研究[D].中南大学,2012.
[13] Zherebtsov, S.V.;Murzinova, M.A.;Klimova, M.V.;Salishchev, G.A.;Popov, A.A.;Semiatin, S.L..Microstructure evolution during warm working of Ti-5Al-5Mo-5V-1Cr-1Fe at 600 and 800°C[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2013:168-176.
[14] Jackson, M;Jones, NG;Dye, D;Dashwood, RJ.Effect of initial microstructure on plastic flow behaviour during isothermal forging of Ti-10V-2Fe-3Al[J].Materials Science and Engineering. A, Structural Materials: Properties, Microstructure and Processing,20091/2(1/2):248-254.
[15] MARTINA DIKOVITS;CECILIA POLETTI;FERNANDO WARCHOMICKA.Deformation Mechanisms in the Near-β Titanium Alloy Ti-55531[J].Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science,20143(3):1586-1596.
[16] D. Feng;X.M. Zhang;S.D. Liu;Y.L. Deng.Constitutive equation and hot deformation behavior of homogenized Al-7.68Zn-2.12Mg-1.98Cu-0.12Zr alloy during compression at elevated temperature[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2014:63-72.
[17] F. Warchomicka;M. Stockinger;H.P. Degischer.Quantitative analysis of the microstructure of near beta titanium alloy during compression tests[J].Journal of Materials Processing Technology,20061/3(1/3):473-477.
[18] N.G. Jones;R.J. Dashwood;D. Dye.Thermomechanical processing of Ti-5Al-5Mo-5V-3Cr[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20081/2(1/2):369-377.
[19] V. V. Balasubrahmanyam;Y. V. R. K. Prasad.Hot deformation mechanisms in metastable beta titanium alloy Ti-10V-2Fe-3Al[J].Materials Science and Technology: MST: A publication of the Institute of Metals,200110(10):1222-1228.
[20] S.L. Raghunathan;R.J. Dashwood;M. Jackson;S.C. Vogel;D. Dye.The evolution of microtexture and macrotexture during subtransus forging of Ti–10V–2Fe–3Al[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20081/2(1/2):8-15.
[21] Lei, L.;Huang, X.;Wang, M.;Wang, L.;Qin, J.;Li, H.;Lu, S..Effect of hot compressive deformation on the martensite transformation of Ti-10V-2Fe-3Al titanium alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2011:591-601.
[22] Weiss I.;Semiatin SL..Thermomechanical processing of beta titanium alloys - an overview[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,19981/2(1/2):46-65.
[23] N.G. JONES;R.J. DASHWOOD;D. DYE.The Flow Behavior and Microstructural Evolution of Ti-5AI-5Mo-5V-3Cr during Subtransus Isothermal Forging[J].Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science,20098(8):1944-1954.
[24] Li, C.;Zhang, X.-Y.;Li, Z.-Y.;Zhou, K.-C..Hot Deformation of Ti-5Al-5Mo-5V-1Cr-1Fe Near Β Titanium Alloys Containing Thin and Thick Lamellar α Phase[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2013:75-83.
[25] 何瑜;魏寿庸;祝瀑.几种典型钛合金的热变形抗力[J].金属学报,2002(z1):261-263.
[26] 叶文君;脱祥明;王世洪.β21S 钛合金热压缩变形行为[J].稀有金属,2002(1):23-27.
[27] 魏衍广;陶海明;陈海珊.Ti-5Mo-5V-2Cr-3Al合金热压缩变形行为[J].稀有金属,2011(3):349-355.
[28] BAO Ru-qiang;HUANG Xu;CAO Chun-xiao.Deformation behavior and mechanisms of Ti- 1023 alloy[J].中国有色金属学会会刊(英文版),2006(02):274-280.
[29] Ning, Y. Q.;Xie, B. C.;Liang, H. Q.;Li, H.;Yang, X. M.;Guo, H. Z..Dynamic softening behavior of TC18 titanium alloy during hot deformation[J].Materials & design,2015Apr.(Apr.):68-77.
[30] Galindo-Nava, E.I.;Rivera-Díaz-del-Castillo, P.E.J..A thermostatistical theory of low and high temperature deformation in metals[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2012:110-116.
[31] Shi, C.;Mao, W.;Chen, X.-G..Evolution of activation energy during hot deformation of AA7150 aluminum alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2013:83-91.
[32] Souza, R.C.;Silva, E.S.;Jorge, A.M.;Cabrera, J.M.;Balancin, O..Dynamic recovery and dynamic recrystallization competition on a Nb- and N-bearing austenitic stainless steel biomaterial: Influence of strain rate and temperature[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2013:96-107.
[33] Dong-Xu Wen;Y.C. Lin;Hong-Bin Li;Xiao-Min Chen;Jiao Deng;Lei-Ting Li.Hot deformation behavior and processing map of a typical Ni-based superalloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2014:183-192.
[34] H.E. Hu;L. Zhen;L. Yang;W.Z. Shao;B.Y. Zhang.Deformation behavior and microstructure evolution of 7050 aluminum alloy during high temperature deformation[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20081/2(1/2):64-71.
[35] H.E. Hu;L. Zhen;B.Y. Zhang.Microstructure characterization of 7050 aluminum alloy during dynamic recrystallization and dynamic recovery[J].Materials Characterization,20089(9):1185-1189.
[36] A. GALIYEV;R. KAIBYSHEV;G. GOTTSTEIN.CORRELATION OF PLASTIC DEFORMATION AND DYNAMIC RECRYSTALLIZATION IN MAGNESIUM ALLOY ZK60[J].Acta materialia,20017(7):1199-1207.
[37] E.I.POLIAK;J.J.JONAS.A ONE-PARAMETER APPROACH TO DETERMINING THE CRITICAL CONDITIONS FOR THE INITIATION OF DYNAMIC RECRYSTALLIZATION[J].Acta materialia,19961(1):127-136.
[38] Qu, F. S.;Zhou, Y. H.;Zhang, L. Y.;Wang, Z. H.;Zhou, J..Research on hot deformation behavior of Ti-5Al-5Mo-5V-1Cr-1Fe alloy[J].Materials & design,2015Mar.(Mar.):153-162.
[39] 梁后权;郭鸿镇;宁永权;姚泽坤;赵张龙.基于软化机制的TC18钛合金本构关系研究[J].金属学报,2014(7):871-878.
[40] JULIEN FAVRE;DAMIEN FABREGUE;ERIC MAIRE.Modeling Grain Boundary Motion and Dynamic Recrystallization in Pure Metals[J].Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science,201313(13):5861-5875.
[41] Liang, H. Q.;Nan, Y.;Ning, Y. Q.;Li, H.;Zhang, J. L.;Shi, Z. F.;Guo, H. Z..Correlation between strain-rate sensitivity and dynamic softening behavior during hot processing[J].Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics,2015:478-485.
[42] Liu S.F.;Li M.Q.;Luo J.;Yang Z..Deformation behavior in the isothermal compression of Ti-5Al-5Mo-5V-1Cr-1Fe alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2014:15-22.
[43] Warchomicka, F.;Poletti, C.;Stockinger, M..Study of the hot deformation behaviour in Ti-5Al-5Mo-5V-3Cr-1Zr[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,201128(28):8277-8285.
[44] D. G. Robertson;H. B McShane.Analysis of high temperature flow stress of titanium alloys IMI 550 and Ti-10V-2Fe-3Al during isothermal forging[J].Materials Science and Technology: MST: A publication of the Institute of Metals,19984(4):339-345.
[45] Zhanglong Zhao;Hongzhen Guo;Xiaochen Wang;Zekun Yao.Deformation behavior of isothermally forged Ti-5Al-2Sn-2Zr-4Mo-4Cr powder compact[J].Journal of Materials Processing Technology,200915/16(15/16):5509-5513.
[46] T. Furuhara;B. Porrganji;H. Abe.Dynamic Recovery and Recrystallization in Titanium Alloys by Hot Deformation[J].JOM,20071(1):64-67.
[47] Balasubrahmanyam VV.;Prasad YVRK..Deformation behaviour of beta titanium alloy Ti-10V-4.5Fe-1.5Al in hot upset forging[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20021/2(1/2):150-158.
[48] J.K. Fan;H.C. Kou;M.J. Lai;B. Tang;H. Chang;J.S. Li.Characterization of hot deformation behavior of a new near beta titanium alloy: Ti-7333[J].Materials & design,2013Aug.(Aug.):945-952.
[49] M. Jackson;R. J. Dashwood.Application of novel technique to examine thermomechanical processing of near #beta# alloy Ti- 10V-2Fe-3Al[J].Materials Science and Technology: MST: A publication of the Institute of Metals,200011/12(11/12):1437-1444.
[50] N. G. Jones;M. Jackson.On mechanism of flow softening in Ti-5AI-5Mo-5V-3Cr[J].Materials Science and Technology: MST: A publication of the Institute of Metals,20116(6):1025-1032.
[51] Fan, J.K.;Kou, H.C.;Lai, M.J.;Tang, B.;Chang, H.;Li, J.S..Hot deformation mechanism and microstructure evolution of a new near β titanium alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2013:121-132.
[52] Behrang Poorganji;Makoto Yamaguchi;Yoshio Itsumi.Microstructure evolution during deformation of a near-alpha titanium alloy with different initial structures in the two-phase region[J].Scripta materialia,20094(4):419-422.
[53] S. Mironov;M. Murzinova;S. Zherebtsov.Microstructure evolution during warm working of Ti-6Al-4V with a colony-alpha microstructure[J].Acta materialia,20098(8):2470-2481.
[54] T. Seshacharyulu;S. C. Medeiros;J. T. Morgan;J. C. Malas;W. G. Frazier;Y. V. R. K. Prasad.Hot deformation and microstructural damage mechanisms in extra-low interstitial (ELI) grade Ti-6Al-4V[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,20001/2(1/2):289-299.
[55] Wang, K.;Zeng, W.;Zhao, Y.;Lai, Y.;Zhou, Y..Hot working of Ti-17 titanium alloy with lamellar starting structure using 3-D processing maps[J].Journal of Materials Science,201021(21):5883-5891.
[56] Y. V. R. K. Prasad;T. Seshacharyulu.Modelling of hot deformation for microstructural control[J].International Materials Reviews,19986(6):243-258.
[57] DUAN Yuan-pei;LI Ping;XUE Ke-min;ZHANG Qing;WANG Xiao-xi.Flow behavior and microstructure evolution of TB8 alloy during hot deformation process[J].中国有色金属学会会刊(英文版),2007(06):1199-1204.
[58] Ning, Y. Q.;Luo, X.;Liang, H. Q.;Guo, H. Z.;Zhang, J. L.;Tan, K..Competition between dynamic recovery and recrystallization during hot deformation for TC18 titanium alloy[J].Materials Science & Engineering, A. Structural Materials: Properties, Misrostructure and Processing,2015:77-85.

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