Formation mechanism of the graphite-rich protective layer in blast furnace hearths

Ke-xin Jiao , Jian-liang Zhang , Zheng-jian Liu , Feng Liu , Li-sheng Liang

International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (1) : 16 -24.

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International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (1) : 16 -24. DOI: 10.1007/s12613-016-1206-3
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Formation mechanism of the graphite-rich protective layer in blast furnace hearths

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Abstract

A long campaign life of blast furnaces is heavily linked to the existence of a protective layer in their hearths. In this work, we conducted dissection studies and investigated damage in blast furnace hearths to estimate the formation mechanism of the protective layer. The results illustrate that a significant amount of graphite phase was trapped within the hearth protective layer. Furthermore, on the basis of the thermodynamic and kinetic calculations of the graphite precipitation process, a precipitation potential index related to the formation of the graphite-rich protective layer was proposed to characterize the formation ability of this layer. We determined that, under normal operating conditions, the precipitation of graphite phase from hot metal was thermodynamically possible. Among elements that exist in hot metal, C, Si, and P favor graphite precipitation, whereas Mn and Cr inhibit this process. Moreover, at the same hot-face temperature, an increase of carbon concentration in hot metal can shorten the precipitation time. Finally, the results suggest that measures such as reducing the hot-face temperature and increasing the degree of carbon saturation in hot metal are critically important to improve the precipitation potential index.

Keywords

blast furnaces / hearths / graphite / protective layers / formation mechanisms

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Ke-xin Jiao, Jian-liang Zhang, Zheng-jian Liu, Feng Liu, Li-sheng Liang. Formation mechanism of the graphite-rich protective layer in blast furnace hearths. International Journal of Minerals, Metallurgy, and Materials, 2016, 23(1): 16-24 DOI:10.1007/s12613-016-1206-3

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References

[1]

Liu Z.J., Zhang J.L., Zuo H.B., Yang T.J. Recent progress on long service life design of chinese blast furnace hearth. ISIJ Int., 2012, 52(10): 1713.

[2]

Khanna R., Rodgers B., McCarthy F., Sahajwalla V. Dissolution of carbon from alumina-carbon mixtures into liquid iron. Metall. Mater. Trans. B, 2006, 37, 623.

[3]

Luengen H.B., Peters M., Schmole P. Ironmaking in western europe. Proceedings of the 5th International Congress on the Science and Technology of Ironmaking, ICSTI’09, Shanghai, 2009 387.

[4]

Xiang Z.Y., Wang X.L. BF Design: the Theory and the Practice of Ironmaking Process, 2013, Beijing, Metallurgical Industry Press, 330.

[5]

Akihiko S., Hitoshi N., Nariyuki Y., Yoshifumi M., Masaru M. Investigation of blast furnace hearth sidewall erosion by core sample analysis and consideration of campaign operation. ISIJ Int., 2003, 43(3): 321.

[6]

Takanobu I., Atsuya K., Kaoru N. Dissection investigation of blast furnace hearth-Kokura No. 2 blast furnace (2nd campaign). ISIJ Int., 2009, 49(4): 470.

[7]

Barbés-Fernández M.F., Marinas-García E., Brandaleze E., Parra-Figueroa R., Verdeja-González L.F., Castillo-Rodriguez G.A., Colás R. Design of blast furnace crucibles by means of the nodal wear model. ISIJ Int., 2008, 48(2): 134.

[8]

Takatani K., Inada T., Takata K. Mathematical model for transient erosion process of blast furnace hearth. ISIJ Int., 2001, 41(10): 1139.

[9]

Kaoru N., Atsuya K., Takanobu I. Investigation of blast furnace hearth by means of dissection test and numerical analysis. [in] Proceedings of the 5th International Congress on the Science and Technology of Ironmaking, ICSTI'09, Shanghai, 2009 1160.

[10]

Zhao H.B., Huo S.F., Cheng S.S. Study on the early warning mechanism for the security of blast furnace hearths. Int. J. Miner. Metall. Mater., 2013, 20(4): 345.

[11]

Wang X.F., Liu Z.J., Sun G.J. Investigation and mechanism research on hearth corrosion of No. 2 BF in Baosteel. Iron Steel, 2009, 44(9): 7.

[12]

Song M.S., Yu Z.J., Xiong Y.F., Li H.Y. Investigation on the lining erosion of No.5 BF in Wuhan Iron and Steel Corporation. Ironmaking, 2008, 27(4): 1.

[13]

Narita K., Maekawa M., Onoye T., Satoh Y., Miyamoto M. Formation of titanium compounds. so-called titanium-bear, in the blast furnace hearth, Tetsu-to-Hagane, 1976, 62(5): 525.

[14]

Jonsson S. Assessment of the Fe–Ti–C system, calculation of the Fe–TiN system, and prediction of the solubility limit of Ti(C,N) in liquid Fe. Metall. Mater. Trans. B, 1998, 29(2): 371.

[15]

Wang C.S., Mu X.J. A mathematical model capable of describing the liquid flow mainly in a blast furnace. Int. J. Miner. Metall. Mater., 2009, 16(5): 505.

[16]

Jiao K.X., Zhang J.L., Zuo H.B., Liu Z.J. Control model of effective Ti content for hearth protection by titanium-bearing material. J. Northeast. Univ. Nat. Sci., 2014, 35(8): 1160.

[17]

Zhang J.Y. Physical Chemistry in Metallurgy, 2004, Beijing, Metallurgical Industry Press, 308.

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