New insights into the effects of silicon content on the oxidation process in silicon-containing steels

Qing Yuan , Guang Xu , Ming-xing Zhou , Bei He

International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (9) : 1048 -1055.

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International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (9) : 1048 -1055. DOI: 10.1007/s12613-016-1322-0
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New insights into the effects of silicon content on the oxidation process in silicon-containing steels

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Abstract

Simultaneous thermal analysis (STA) was used to investigate the effects of silicon content on the oxidation kinetics of silicon- containing steels under an atmosphere and heating procedures similar to those used in industrial reheating furnaces for the production of hot-rolled strips. Our results show that when the heating temperature was greater than the melting point of Fe2SiO4, the oxidation rates of steels with different silicon contents were the same; the total mass gain decreased with increasing silicon content, whereas it increased with increasing oxygen content. The oxidation rates for steels with different silicon contents were constant with respect to time under isothermal conditions. In addition, the starting oxidation temperature, the intense oxidation temperature, and the finishing oxidation temperature increased with increasing silicon content; the intense oxidation temperature had no correlation with the melting of Fe2SiO4. Moreover, the silicon distributed in two forms: as Fe2SiO4 at the interface between the innermost layer of oxide scale and the iron matrix, and as particles containing silicon in grains and grain boundaries in the iron matrix.

Keywords

silicon steel / oxidation kinetics / iron oxides / silicon dioxide / silicon content

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Qing Yuan, Guang Xu, Ming-xing Zhou, Bei He. New insights into the effects of silicon content on the oxidation process in silicon-containing steels. International Journal of Minerals, Metallurgy, and Materials, 2016, 23(9): 1048-1055 DOI:10.1007/s12613-016-1322-0

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References

[1]

Liu X.J., Cao G.M., He Y.Q., Jia T., Liu Z.Y. Effect of temperature on scale morphology of Fe–1.5Si alloy. J. Iron Steel Res. Int., 2013, 20(11): 73.

[2]

Yang Y.L., Yang C.H., Lin S.N., Chen C.H., Tsai W.T. Effect of Si and its content on the scale formation on hot-rolled steel strips. Mater. Chem. Phys., 2008, 112(2): 566.

[3]

Cao G.M., Liu X.J., Sun B., Liu Z.Y. Morphology of oxide scale and oxidation kinetics of low carbon steel. J. Iron Steel Res. Int., 2014, 21(3): 335.

[4]

Fukumoto M., Maeda S., Hayashi S., Narita T. Effect of water vapor on the oxidation behavior of Fe–1.5Si in air at 1073 and 1273 K. Oxid. Met., 2001, 55(5): 401.

[5]

Taniguchi S., Yamamoto K., Megumi D., Shibata T. Characteristics of scale/substrate interface area of Si-containing low-carbon steels at high temperatures. Mater. Sci. Eng. A, 2001, 308(1-2): 250.

[6]

Okada H., Fukagawa T., Ishihara H., Okamoto A., Azuma M., Matsuda Y. Prevention of red scale formation during hot rolling of steels. ISIJ Int., 1995, 35(7): 886.

[7]

Yang C.H., Lin S.N., Chen C.H., Tsai W.T. Effect of temperature and straining on the oxidation behavior of electrical steels. Oxid. Met., 2009, 72, 145.

[8]

Kiyoshi K., Ryoko W., Tomoharu I., Mikako T., Takashi O., Guo X.P. High-temperature oxidation behavior and scale morphology of Si-containing steels. ISIJ Int., 2007, 47(9): 1329.

[9]

Chen R.Y., Yuen W.Y.D. Review of the high-temperature oxidation of iron and carbon steels in air or oxygen. Oxid. Met., 2003, 59(5): 433.

[10]

Mouayd A.A., Koltsov A., Sutter E., Tribollet B. Effect of silicon content in steel and oxidation temperature on scale growth and morphology. Mater. Chem. Phys., 2014, 143(3): 996.

[11]

Suarez L., Schneider J., Houbaert Y. Effect of Si on high-temperature oxidation of steel during hot rolling. Defect Diffus. Forum, 2008, 273-276, 655.

[12]

Yuan Q., Xu G., Zhou M.X., He B. The effect of the Si content on the morphology and amount of Fe2SiO4 in low carbon steels. Metals, 2016, 6(4): 94.

[13]

Birks N., Meier G.H., Pettit F.S. Introduction to the High-temperature Oxidation of Metals, 2006 104.

[14]

Li S.J., Liu Y.B., Zhang W., Sun Q.S., Wang L.P. Effects of silicon on spring steel oxidation rate under 2% residual oxygen atmosphere. J. Iron Steel Res., 2015, 27(5): 55.

[15]

Kofstad P. Low-pressure oxidation of tantalum at 1300–1800°C. J. Less Common Met., 1964, 7(4): 241.

[16]

Atkinson A. A theoretical analysis of the oxidation of Fe–Si alloys. Corros. Sci., 1982, 22(2): 87.

[17]

Adachi T., Meier G. Oxidation of iron–silicon alloys. Oxid. Met., 1987, 27(5/6): 347.

[18]

He B., Xu G., Zhou M., Yuan Q. Effect of oxidation temperature on the oxidation process of silicon-containing steel. Metals, 2016, 6(6): 137.

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