Pre-desilication and digestion of gibbsitic bauxite with lime in sodium aluminate liquor

Xiao-lin Pan , Hai-yan Yu , Kai-wei Dong , Gan-feng Tu , Shi-wen Bi

International Journal of Minerals, Metallurgy, and Materials ›› 2012, Vol. 19 ›› Issue (11) : 973 -977.

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International Journal of Minerals, Metallurgy, and Materials ›› 2012, Vol. 19 ›› Issue (11) : 973 -977. DOI: 10.1007/s12613-012-0657-4
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Pre-desilication and digestion of gibbsitic bauxite with lime in sodium aluminate liquor

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Abstract

The effect of lime on the pre-desilication and digestion of gibbsitic bauxite in synthetic sodium aluminate liquor at different temperatures was investigated. The bauxite is comprised of gibbsite, aluminogoethite, hematite, kaolin, quartz, and minor boehmite. Lime increases the desilication efficiency of the bauxite during the pre-desilication process by promoting the conversion of sodalite and cancrinite to hydrogarnet. Desilication reactions during the digestion process promoted by lime result in the loss of Al2O3 entering the red mud, but the amount of aluminogoethite-to-hematite conversion promoted by lime leads to the increase of aluminogoethitic Al2O3 entering the digested liquor. The alumina digestion rate at 245°C is higher than that at 145°C due to the more pronounced conversion of aluminogoethite to hematite. The soda consumption during the digestion process decreases due to lime addition, especially at higher temperatures.

Keywords

bauxite ore treatment / lime / sodium aluminate / desilication / alumina / Bayer process

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Xiao-lin Pan, Hai-yan Yu, Kai-wei Dong, Gan-feng Tu, Shi-wen Bi. Pre-desilication and digestion of gibbsitic bauxite with lime in sodium aluminate liquor. International Journal of Minerals, Metallurgy, and Materials, 2012, 19(11): 973-977 DOI:10.1007/s12613-012-0657-4

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References

[1]

Power G., Loh J. Organic compounds in the processing of lateritic bauxites to alumina: Part 1. Origins and chemistry of organics in the Bayer process. Hydrometallurgy, 2010, 105(1–2): 1

[2]

Li H.X., Addai-Mensah J., Thomas J.C., Gerson A.R. The crystallization mechanism of Al(OH)3 from sodium aluminate solutions. J. Cryst. Growth, 2005, 279(3–4): 508

[3]

Hind A.R., Bhargava S.K., Grocott S.C. The surface chemistry of Bayer process solids: a review. Colloids Surf. A, 1999, 146(1–3): 359

[4]

Wang Y.H., Huang C.B., Hu Y.H., Hu Y.M., Lan Y. Beneficiation of diasporic-bauxite ore by selective flocculation with a polyacrylate flocculant. Miner. Eng., 2008, 21(9): 664

[5]

Li H.Q., Shao T.M., Li D.S., Chen D.R. Nonisothermal reaction kinetics of diasporic bauxite. Thermochim. Acta, 2005, 427(1–2): 9

[6]

Zarbayani M., Jorjani E., Mirmohammadi M., Shadloo M.T., Noaparast M. Mineralogical and sink-float studies of Jajarm low-grade bauxite. Int. J. Miner. Metall. Mater., 2010, 17(3): 251

[7]

K. Solymaer and J. Zoeldi, Lime in the Bayer process. Present state and future trends, Light Met., (1993), p.185.

[8]

Whittington B.I. The chemistry of CaO and Ca(OH)2 relating to the Bayer process. Hydrometallurgy, 1996, 43(1–3): 13

[9]

Mal’ts N.S., Poddymov V.P., Rudashevskii L.S., Kiselev V.E. Mechanism of the intensifying action of lime on bauxite leaching kinetics. Tsvetnye Metally, 1985, 11, 40.

[10]

Li X.B., Zhou Q.S., Wang H.Y., Peng Z.H., Liu G.H. Hydrothermal formation and conversion of calcium titanate species in the system Na2O-Al2O3-CaO-TiO2-H2O. Hydrometallurgy, 2010, 104(2): 156

[11]

Whittington B., Fallows T. Formation of lime-containing desilication product (DSP) in the Bayer process: factors influencing the laboratory modelling of DSP formation. Hydrometallurgy, 1997, 45(3): 289

[12]

Ma J.Y., Zhai K.M., Li Z.B. Desilication of synthetic Bayer liquor with calcium sulfate dihydrate: Kinetics and modeling. Hydrometallurgy, 2011, 107(1–2): 48

[13]

A. Suss, A. Fedyaev, N. Kuznetzova, A. Damaskin, A. Kuvyrkina, A. Panov, I. Paromova, and I. Lukyanov, Technology solutions to increase alumina recovery from aluminogoethitic bauxites, Light Met., (2010), p.53.

[14]

E. Tizon, P. Clerin, and B. Cristol, Effect of predesilication and digestion conditions on silica level in Bayer liquor, Light Met., (2004), p.9.

[15]

B. Xu, P. Smith, C. Wingate, and L. De Silva, The effect of anatase and lime on the transformation of sodalite to cancrinite in Bayer digestion at 250°C, Light Met., (2010), p.81.

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