|
|
Effect of Residual Carbon on Primary and Secondary Recrystallization of Grain-oriented Silicon Steel |
FU Yongjun,LEI Jialiu( ),LIAO Qingling,ZHAO Dongnan,ZHANG Yucheng |
School of Materials Science and Engineering, Hubei Polytechnic University, Huangshi 435000,China |
|
Cite this article:
FU Yongjun,LEI Jialiu,LIAO Qingling,ZHAO Dongnan,ZHANG Yucheng. Effect of Residual Carbon on Primary and Secondary Recrystallization of Grain-oriented Silicon Steel. Chinese Journal of Materials Research, 2020, 34(2): 118-124.
|
Abstract The effect of residual carbon on the microstructure of the primary and secondary recrystallization of the grain-oriented silicon steel was investigated, whereas, the carbon content of the steel was controlled via varying the steam amount in the gas mixture 25%H2+75%N2 for the annealing process. The results show that the average grain size of primary recrystallization decreased and the grain size difference between the surface portion and the center portion increase with the increase of residual carbon content in the steel subjected to decarburization annealing. The texture of primary recrystallization changed from strong {111}<110> or {111}<112> into strong {112}<110> , while the texture of some Goss grains in 1/4 layer or {111}<112> grains was also altered. The steel subjected to high temperature annealing had imperfect secondary recrystallization and bad magnetic properties when the carbon content in the sample was higher than 0.0200%. Phase transformation is the main reason that led to the above phenomena.
|
Received: 15 July 2019
|
|
Fund: National Natural Science Foundation of China(51704105);National High Technology Research and Development Program of China(2012AA03A505);Hubei Provincial Central Committee Guides Local Science and Technology Development Project(2019ZYYD006);Guiding Projects of Science and Technology Research Program of Hubei Education Department(B2019227);Scientific Research Projects of Hubei Polytechnic University(18xjz05R) |
[1] | He Z Z. Electrical Steel [M]. Beijing: The Press of Metallurgical Industry, 1996 | [1] | (何忠治. 电工钢 [M]. 北京: 冶金工业出版社, 1996) | [2] | An X, Cawley J, Rainforth W M, et al. A study of internal oxidation in carburized steels by glow discharge optical emission spectroscopy and scanning electron microscopy [J]. Spectrochim. Acta, 2003, 58(4): 689 | [3] | Marini P, Abbruzzese G. Decarburization rate related to surface oxidation of grain oriented silicon steel [J]. J. Magn. Magn. Mater., 1982, 26(1): 15 | [4] | YANG S Z, DAI F Q, GUO Y. Numerical simulation analysis of the decarburization process of oriented silicon steel [J]. J. Wuhan Univ. Sci.Technol., 2016, 39(4): 253 | [4] | (杨守洲, 戴方钦, 郭 悦. 取向硅钢脱碳过程的数值模拟分析 [J]. 武汉科技大学学报, 2016, 39(4): 253) | [5] | Wu Z H, Hu S T, Guo Y, et al. Effects of annealing condition on decarburization of grain oriented silicon [J]. T. Mater. Heat Treat., 2017, 38(2): 91 | [5] | (吴章汉, 胡守天, 郭 悦等. 退火条件对取向硅钢脱碳效果的影响 [J]. 材料热处理学报, 2017, 38(2): 91) | [6] | Marra K M, Alvarenga E D A, Buono V T L. Decarburization Kinetics during Annealing of a Semi-processed Electrical Steel [J]. ISIJ Int., 2004, 44(3): 618 | [7] | Stephenson E T. The effects of decarburization annealing on the microstructure and magnetic properties of semiprocessed motor lamination steels [J]. J. Mater. Eng., 1990, 12(1): 69 | [8] | He L J. Rules and characteristics of decarburization annealing at two phase region for electrical steel [J]. Wuhan Iron Steel Corp. Technol., 1981(3): 58 | [8] | (何礼君. 电工钢两相区脱碳退火的规律及其特点 [J]. 武钢技术, 1981(3): 58) | [9] | Oldani C R. Decarburization and grain growth kinetics during the annealing of electrical steels [J]. Scr. Mater., 1996, 35(11): 1253 | [10] | Marder A R, Perpetua S M, Kowalik J A, et al. The effect of carbon content on the kinetics of decarburization in Fe-C alloys [J]. Metall. Trans. A, 1985, 16(6): 1160 | [11] | Chen Y L, Qiu Y Q, Liu W N. Effect of carbon on heating temperature of slabs of high induction grain-oriented silicon steel [J]. J. Iron Steel Res., 1984, 4(2): 147 | [11] | (陈煜廉, 秋渝青, 刘文能. 碳对高磁感取向硅钢板加热温度的影响 [J]. 钢铁研究总院学报, 1984, 4(2): 147) | [12] | Zhang Z J, Zang Z. Research on Silicon-Steel’s Decarbonizing Technique [J]. Sci.Technol. Info. Dev. Econ., 2004, 14(6): 162 | [12] | (张志杰, 臧 震. 硅钢脱碳工艺研究 [J]. 科技情报开发与经济, 2004, 14(6): 162) | [13] | Liu G M, Liu J S, Liu X H, et al. Current Status and Future Prospectus of Production and Development of Electrical Sheet Steel [J]. Special Steel, 2005, 26(1): 38 | [13] | (刘光穆, 刘继申, 刘新和等. 电工钢的生产开发现状和发展趋势 [J]. 特殊钢, 2005, 26(1): 38) | [14] | Ray S K, Mishra S, Mohanty O N. Magnetic Aging Characteristics of a Phosphorous Bearing Low Carbon Steel [J]. Scr. Metall. Mater., 1981, 15(9): 971 | [15] | Xu L F, Mao W M, Zhang X H. Influence of texture on magnetic aging of cold rolling non-oriented silicon steel sheets [J]. J. Funct. Mater., 2010, 41(12): 2144 | [15] | (许令峰, 毛卫民, 张晓辉. 晶粒取向对冷轧无取向硅钢磁时效的影响 [J]. 功能材料, 2010, 41(12): 2144) | [16] | Michal G M, Slane J A. Carbide Precipitation in Electrical Steels [J]. JOM, 1986, 38(1): 32 | [17] | Ray S K, Monanty O N. On predicting the extent of magnetic aging in electrical steels [J]. J. Magn. Magn. Mater., 1989, 78(4): 255 | [18] | Marra K M,Alvarenga E A,Buono V T L. Magnetic aging anisotropy of a semi- processed non-oriented electrical steel [J]. Mater. Sci. Eng., A, 2005, 390 (1-2): 423 | [19] | Ushioda K, Hutchinson W B. Role of shear bands in annealing texture formation in 3% Si-Fe (111)[112] single crystals [J]. ISIJ Int., 1989, 29(10): 862 | [20] | Hayakawa Y, Szpunar J A. A new model of Goss texture development during secondary recrystallization of electrical steel [J]. Acta Mater., 1997, 45(11): 4713 | [21] | Hayakawa Y, Muraki M. The changes of Grain Boundary Character Distribution During the Secondary Recrystallization of Electrical Steel [J]. Acta Mater.,1998, 46(3): 1063 | [22] | Yang S Z. The Study of Decarburization Process in the Oriented Silicon Steel Production [D]. Wuhan: Wuhan Univ. Sci.Technol., 2016 | [22] | (杨守洲. 取向硅钢脱碳研究 [D]. 武汉: 武汉科技大学, 2016) | [23] | Li Z C, Yang P, Cui F E, et al. Analysis on the secondary recrystallization in grain oriented silicon steel [J]. J. Chin. Electron Microsc. Soc., 2010, 29(1): 48 | [23] | (李志超, 杨 平, 崔凤娥等. 取向硅钢二次再结晶行为分析 [J]. 电子显微学报, 2010, 29(1): 48) |
|
No Suggested Reading articles found! |
|
|
Viewed |
|
|
|
Full text
|
|
|
|
|
Abstract
|
|
|
|
|
Cited |
|
|
|
|
|
Shared |
|
|
|
|
|
Discussed |
|
|
|
|