EFFECT OF CONTROLLED ROLLING PROCESSING ON NANOMETER–SIZED CARBONITRIDE OF Ti–Mo FERRITE MATRIX MICROALLOYED STEEL
Received date: 2012-06-12
Revised date: 2012-09-23
Online published: 2012-12-11
Supported by
Supported by National Natural Science Foundation of China (No.51274036)
Single nanometer–sized particles, which are smaller than 10 nm, can significantly enhance the precipitation strengthening in microalloyed steels, thus causing their strength to be promoted greatly. In order to improve the strength of the steel, it is quite necessary to get a large amount of single nanometer–sized particles through optimizing rolling technology. In this work, the effects of two different kinds of controlled rolling technologies on the size and distribution of precipitated particles in the Ti–Mo ferritie matrix microalloyed steel have been researched using SEM, TEM and small–angle X–ray scattering. The results show that with the same total rolling reduction, the steel rolled only in γ phase crystallization zone can obtain a higher portion of single nanometer–sized particles than that rolled respectively in phase recrystallization and nonrecrystallization zones, in which those single nanometer–sized particles account for about 75% (mass fraction) of whole precipitated particles. In order to study the effect of deformation potency in γ phase zone on the amount of precipitates in phase and the micro–crystal size, nucleation rate and incubation time of following precipitates in γ→α transformation and ferritie matrix after γ→α transformation, some thermodynamics and kinetics calculations and analysis on precipitation are also conducted.
SUN Chaofan CAI Qingwu WU Huibin MAO Hongyan CHEN Hongzhen . EFFECT OF CONTROLLED ROLLING PROCESSING ON NANOMETER–SIZED CARBONITRIDE OF Ti–Mo FERRITE MATRIX MICROALLOYED STEEL[J]. Acta Metall Sin, 2012 , 48(12) : 1415 -1421 . DOI: 10.3724/SP.J.1037.2012.00348
[1] Funakawa Y, Shiozaki T, Tomita K, Yamamoto T, Maeda E. ISIJ Int, 2004; 44: 1945
[2] Chen C Y, Yen H W, Kao F H, Li W C, Huang C Y, Yang J R, Wang S H. Mater Sci Eng, 2009; A499: 162
[3] Funakawa Y, Seto K. Mater Sci Forum, 2007; 539–543: 4813
[4] Duan X G, Cai Q W, Wu H B. Acta Metall Sin, 2011; 47:251
(段修刚, 蔡庆伍, 武会宾. 金属学报, 2011; 47: 251)
[5] Jung J G, Park J S, Kim J, Lee Y K. Mater Sci Eng, 2011; A528: 5529
[6] Craven A J, He K, Garvie L A J, Baker T N. Acta Mater, 2000; 48: 3857
[7] Niu T, Kang Y L, Gu H W, Yin Y Q, Qiao M L. J IronSteel Res Int, 2010; 17: 73
[8] Hong S G, Kang K B, Park C G. Scr Mater, 2002; 46: 163
[9] Hu B H. Master Dissertation, University of Science and Technology Beijing, 2012
(胡彬浩. 北京科技大学硕士学位论文, 2012)
[10] Okamoto R, Borgenstam A, Agren J. Acta Mater, 2010; 58: 4783
[11] Okamoto R, Agren J. Acta Mater, 2010; 58: 4791
[12] Duan X G, Cai Q W, Wu H B, Tang D. J Univ Sci Technol Beijing, 2012; 34: 644
(段修刚, 蔡庆伍, 武会宾, 唐荻. 北京科技大学学报, 2012; 34: 644)
[13] Pickering F B. Physical Metallurgy and the Design of Steels. London: Applied Science Publishing Ltd, 1978: 63
[14] Duan X G. PhD Thesis, University of Science and Technology Beijing, 2012
(段修刚. 北京科技大学博士学位论文, 2012)
[15] Cao J C. PhD Thesis, Kunming University of Science and Technology, 2006
(曹建春. 昆明理工大学博士学位论文, 2006)
[16] Yong Q L. Secondary Phase in Steel. Beijing: Metallurgical Industry Press, 2006: 1
(雍岐龙. 钢铁材料中的第二相. 北京: 冶金工业出版社, 2006: 1)
[17] Zhang L Z, Zhao X M, Wu D, Xu Y B. J Iron Steel Res, 2006; 18(4): 41
(张良哲, 赵宪明, 吴迪, 许云波. 钢铁研究学报, 2006; 18(4): 41)
[18] Zhang L, Xue C X, Yang W Y, Sun Z Q. Acta Metall Sin, 2007; 43: 791
(张玲, 薛春霞, 杨王月,孙祖庆. 金属学报, 2007; 43: 791)
[19] Yong Q L, Chen M X, Pei H Z, Pan L, Zhou X L, Yang T W, Zhong W, Hao J Y. J Iron Steel Res, 2006; 18(3): 30
(雍岐龙, 陈明昕, 裴和中, 潘俐, 周晓玲, 杨天武, 钟卫, 郝建英. 钢铁研究学报, 2006; 18(3): 30)
[20] Funakawa Y. Mater Sci Forum, 2012; 706–709: 2096
/
| 〈 |
|
〉 |