Water model experiments of multiphase mixing in the top-blown smelting process of copper concentrate

Hong-liang Zhao , Pan Yin , Li-feng Zhang , Sen Wang

International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (12) : 1369 -1376.

PDF
International Journal of Minerals, Metallurgy, and Materials ›› 2016, Vol. 23 ›› Issue (12) : 1369 -1376. DOI: 10.1007/s12613-016-1360-7
Article

Water model experiments of multiphase mixing in the top-blown smelting process of copper concentrate

Author information +
History +
PDF

Abstract

We constructed a 1:10 cold water experimental model by geometrically scaling down an Isa smelting furnace. The mixing processes at different liquid heights, lance diameters, lance submersion depths, and gas flow rates were subsequently measured using the conductivity method. A new criterion was proposed to determine the mixing time. On this basis, the quasi-equations of the mixing time as a function of different parameters were established. The parameters of the top-blown smelting process were optimized using high-speed photography. An excessively high gas flow rate or excessively low liquid height would enhance the fluctuation and splashing of liquid in the bath, which is unfavorable for material mixing. Simultaneously increasing the lance diameter and the lance submersion depth would promote the mixing in the bath, thereby improving the smelting efficiency.

Keywords

copper smelting / multiphase flow / mixing / water modeling

Cite this article

Download citation ▾
Hong-liang Zhao, Pan Yin, Li-feng Zhang, Sen Wang. Water model experiments of multiphase mixing in the top-blown smelting process of copper concentrate. International Journal of Minerals, Metallurgy, and Materials, 2016, 23(12): 1369-1376 DOI:10.1007/s12613-016-1360-7

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Mackey P.J. Evolution of the large copper smelter-1800s to 2013. Proceedings of the Extraction and Processing Division Symposium on Pyrometallurgy in Honor of David G.C. Robertson, 2014 17.

[2]

Floyd J.M. The third decade of top submerged lance technology. The Howard Worner International Symposium on Injection in Pyrometallurgy, 1996 417.

[3]

Schlesinger M.E., King M.J., Sole K.C., Davenport W.G. Extractive Metallurgy of Copper, 2011 5 AE Amsterdam, Elsevier, 155.

[4]

Zhu Z.Z., He J.Z. Modern Copper Metallurgy, 2003, Beijing, Science Press, 281.

[5]

Li X., Bao Y.P., Wang M., Lin L. Simulation study on factors influencing the entrainment behavior of liquid steel as bubbles pass through the steel/slag interface. Int. J. Miner. Metall. Mater., 2016, 23(5): 511.

[6]

Wang M., Zhang C.J., Li R. Uniformity evaluation and optimization of fluid flow characteristics in a seven-strand tundish. Int. J. Miner. Metall. Mater., 2016, 23(2): 137.

[7]

Wen G.H., Huang Y.F., Tang P., Zhu M.M. Improvement of tundish shape and optimization of flow control devices for sequence casting heavy steel ingots. Int. J. Miner. Metall. Mater., 2012, 19(1): 15.

[8]

Iguchi M., Uemura T., Yamaguchi H., Kuranaga T., Morita Z. Fluid flow phenomena in a cylindrical bath agitated by top lance gas injection. ISIJ Int., 1994, 34(12): 973.

[9]

Liow J.L. Quasi-equilibrium bubble formation during top-submerged gas injection. Chem. Eng. Sci., 2000, 55(20): 4515.

[10]

Wang J.L., Ooyabu H., Wang F.M., Iguchi M. Swirl motion in a cylindrical bath agitated by top lance gas injection. ISIJ Int., 2011, 51(7): 1080.

[11]

Yamashita S., Miyamoto K., Iguchi M., Zeze M. Model experiments on the mixing time in a bottom blown bath covered with top slag. ISIJ Int., 2003, 43(11): 1858.

[12]

Iguchi M., Sasaki Y., Kawabata N., Iwasaki T. Mixing time in a bath agitated simultaneously by bottom gas injection and side liquid injection. Mater. Trans., 2004, 45(7): 2369.

[13]

Su C.J., Chou J.M., Liu S.H., Chiang C.H. Effect of gas bottom blowing conditions on mixing of molten iron inside an ironmaking smelter. Mater. Trans., 2010, 51(9): 1594.

AI Summary AI Mindmap
PDF

128

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/