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Hydrometallurgical Processing of a Nigerian Galena Ore in Nitric Acid: Characterization and Dissolution Kinetics

DOI: 10.4236/jmmce.2018.63020, PP. 271-293

Keywords: Galena, Nigeria, Characterization, Leaching, Dissolution Kinetics, Nitric Acid

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Abstract:

The physico-chemical characterization and dissolution kinetics study of a Nigerian galena ore in nitric acid has been undertaken. The effects of acid concentration, temperature, particle size, stirring speed and solid/liquid ratio on the leaching of galena were investigated. The X-ray fluorescence data showed that the galena ore used in the study exists mainly as PbS. Lead (Pb) was detected as the major metal for galena with metals such as Na, Ca, Fe, Zn, Al and Mg occurring as minor elements. The XRD analysis also confirmed the originality of the galena ore as it revealed that galena exists mainly as lead sulphide (PbS). The Fourier transform infrared (FTIR) analysis also supported the XRF and XRD analysis by revealing the presence of sulphur in the ore. The scanning electron micrograph (SEM) analysis revealed a high level of crystallinity of the ore. Results of the leaching studies showed that galena dissolution in nitric acid (HNO3) increases with increasing concentration of nitric acid, temperature and stirring rate, and decreases with increasing particle diameter and solid/liquid ratio. In 10 M HNO3 at a temperature of 90°C using 75 μm particle diameter with solid/liquid ratio of 20 g/L and stirring speed of 540 rpm, about 84.5% of galena was dissolved in 150 minutes. The values of activation energy, order of reaction and Arrhenius constant calculated at the conditions above for galena were 27.01 KJ/mol, 0.93, 26.71 s-1 respectively. The mechanism of dissolution of galena was established to follow the shrinking core model for the diffusion controlled mechanism, with surface chemical reaction as the rate controlling step for the leaching process. Finally, the XRD analysis of the post-leaching residue revealed the presence of gahnite and anglesite.

References

[1]  Da Silva, G. (2004) Kinetics and Mechanism of the Bacterial and Ferric Sulphate Oxidation of Galena. Hydrometallurgy, 75, 99-110.
https://doi.org/10.1016/j.hydromet.2004.07.001
[2]  Ukpong, E.E. and Olade, M.A. (1979) Geochemical Surveys for Lead-Zinc Mineralization, Southern Benue Trough, Nigeria. Transactions of Institute of Mining and Metallurgy, 88B, 81-92.
[3]  Rahman, M.A.O. (2004) Nigeria’s Minerals Endowment and Sustainable Development. 2nd Mosobalaje Oyawoye Endowed Faculty of Science Lecture, University of Ilorin, Unilorin Press, Illorin, 1-40.
[4]  Baird, C. and Cann, N. (2012) Environmental Chemistry. 5th Edition, W. H. Freeman and Company, New York.
[5]  Parker, R.B. (2005) The New Cold-Molded Boatbuilding: From Lofting to Launching. Wooden Boat Publications, Brooklin.
[6]  Krestovnikoff, M. and Halls, M. (2006) Scuba Diving. Dorling Kindersley, London.
[7]  Jensen, C.F. (2013) Online Location of Faults on AC Cables in Underground Transmission. Springer, Berlin.
[8]  Feursternau, M.C., Nebo, C.O., Elango, B.V. and Han, K.H. (1987) The Kinetics of Leaching Galena with Ferric Nitrate. Metallurgical and Materials Transactions B, 18, 25-30.
[9]  Awakura, Y., Kamei, S. and Majima, H. (1980) A Kinetic Study of Non-Oxidative Dissolution of Galena in Aqueous Acid Solution. Metallurgical and Materials Transactions B, 11, 377-381.
https://doi.org/10.1007/BF02676882
[10]  Olanipekun, E.O. (2000) Quantitative Leaching of Galena. Bulletin of the Chemical Society of Ethiopia, 14, 25-32.
https://doi.org/10.4314/bcse.v14i1.71994
[11]  Makita, M., Esperon, M., Lopez, B.P. and Orrantia, E. (2004) Reduction of Arsenic Content in a Complex Galena by Acidithiobacillus ferrooxidans. BMC Biotechnology, 4, 22-38.
https://doi.org/10.1186/1472-6750-4-22
[12]  Wang, S., Fang, Z., Wang, Y. and Chen, Y. (2003) Electronegative Leaching of Galena with Ferric Chloride. Minerals Engineering, 16, 869-872.
[13]  Aydogan, S., Erdemoglu, M., Ucar, G. and Aras, A. (2007) Kinetics of Galena Dissolution in Nitric Acid Solutions with Hydrogen Peroxide. Hydrometallurgy, 88, 52-57.
https://doi.org/10.1016/j.hydromet.2007.03.005
[14]  Warren, G.W., Kim, S. and Henein, H. (1986) The Effect of Chloride Ion on the Ferric Chloride Leaching of Galena Concentrate. Metallurgical and Materials Transactions B, 18, 59.
https://doi.org/10.1007/BF02658432
[15]  Baba, A.A. and Adekola, F.A. (2011) Comparative Analysis of the Dissolution Kinetics of Galena in Binary Solutions of HCl/FeCl3 and HCl/H2O2. International Journal of Minerals, Metallurgy and Materials, 18, 9-17.
https://doi.org/10.1007/s12613-011-0393-1
[16]  Liu, J., Aruguete, D.M., Jinschek, J.R., Rimstidt, J.D. and Hochella, M.F. (2008) The Non-Oxidative Dissolution of Galena Nano-Crystals: Insights into Mineral Dissolution Rates as a Function of Grain Size, Shape, and Aggregation State. Geochimica et Cosmochimica Acta, 72, 5984-5996.
https://doi.org/10.1016/j.gca.2008.10.010
[17]  Gerson, R.A. and O’Dea, A.R. (2003) A Quantum Chemical Investigation of the Oxidation and Dissolution Mechanism of Galena. Geochimica et Cosmochimica Acta, 67, 813-822.
[18]  Aydogan, S., Erdemoglu, M., Ucar, G. and Aras, A. (2007) Dissolution Kinetics of Galena in Acetic Acid Solutions with Hydrogen Peroxide. Hydrometallurgy, 89, 189-195.
https://doi.org/10.1016/j.hydromet.2007.07.004
[19]  Baba, A.A. (2008) Recovery of Zinc and Lead from Sphalerite, Galena and Waste Materials by Hydrometallurgical Treatments. University of Ilorin, Ilorin, 675.
[20]  Levenspiel, O. (1972) Chemical Reaction Engineering. 2nd Edition, John Wiley & Sons, New York.
[21]  Merwe, W. (2003) Dissolution of Sphalerite Minerals from Rosh Pinah Tailings, Magister Scientiae. Faculty of Natural and Agric. Sciences, University of Pretoria, Pretoria, 106.
[22]  Baba, A.A. and Adekola, F.A. (2012) A Study of Dissolution Kinetics of a Nigerian Galena Ore in Hydrochloric Acid. Journal of Saudi Chemical Society, 16, 377-386.
https://doi.org/10.1016/j.jscs.2011.02.005
[23]  Abraitts, P.K., Pattrick, R.A.D., Kelsall, G.H. and Vaughan, D.J. (2004) Acid Leaching and Dissolution of Major Sulphide Ore Minerals: Processes and Galvanic Effects in Complex System. Mining Magazine, 68, 343-351.
https://doi.org/10.1180/0026461046820191
[24]  Cisneros-Gonzalez, I., Oropeza-Guzman, M. and Gonzalez, T. (2000) Galena and Sphalerite Process in Acidic Chloride Media, Electrochemistry in Mineral and Metal Processing. Proceedings of the Electrochemical Society, No. 14, 248-254.
[25]  Harvey, T.J. and Yen, W.T. (1998) The Influence of Chalcopyrite, Galena and Pyrite on the Selective Extraction of Zinc from Base Metal Sulphide Concentrates. Minerals Engineering, 11, 1-21.
https://doi.org/10.1016/S0892-6875(97)00135-0
[26]  Pacholewska, M. (2004) Bioleaching of Galena Flotation Concentrates. Physicochemical Problems of Mineral Processing, 38, 281-291.
[27]  Hutchison, C.S. (1974) Laboratory Handbook of Petrography Techniques. John Wiley and Sons Inc., New York, 1-14.
[28]  Bendou, S. and Amrani, M. (2014) Effect of Hydrochloric Acid on the Structural of Sodic-Bentonite Clay. Journal of Minerals and Materials Characterization and Engineering, 2, 404-413.
https://doi.org/10.4236/jmmce.2014.25045
[29]  Ajemba, R.O. and Onukwuli, O.D. (2012) Application of the Shrinking Core Model to the Analysis of Alumina Leaching from Ukpor Clay using Nitric Acid. International Journal of Engineering Research & Technology, 1, 1-13.
[30]  Dutrizac, J.E. and MacDonald, R.J.C. (1977) CIM Annual Volume, 186-194.
[31]  Baba, A.A. and Adekola, F.A. (2010) Hydrometallurgical Processing of a Nigerian Sphalerite in Hydrochloric Acid: Characterization and Dissolution Kinetics. Hydrometallurgy, 101, 69-75.
https://doi.org/10.1016/j.hydromet.2009.12.001
[32]  Habashi, F. (2005) Hydrometallurgy of Lead. Metallurgia, 59, 114-118.
[33]  Khalique, A., Akram, A., Ahmed, A.S. and Hamid, N. (2005) Effect of Sodium Chloride on Dissolution of Galena in Aqueous Acid Solution. Pakistan Journal of Scientific and Industrial Research, 48, 236-239.
[34]  Leao, V.A., Souza, A.D., Pina, P.S., Silva, C.A. and Siqueira, P.F. (2007) The Leaching Kinetics of a Zinc Sulphide Concentrate in Acid Ferric Sulphate. Hydrometallurgy, 89, 72-81.
https://doi.org/10.1016/j.hydromet.2007.05.008
[35]  Olanipekun, E.O. and Oderinde, R.A. (1999) Hydrochloric Acid Leaching of Sphalerite in the Presence of an Oxidizing Agent. Pakistan Journal of Scientific and Industrial Research, 42, 204-208.
[36]  Antonijevic, M.M., Jankovic, Z.D. and Dimitrijevic, M.D. (2004) Kinetics of Chalcopyrite Dissolution by Hydrogen Peroxide in Sulphuric Acid. Hydrometallurgy, 71, 329-334.
https://doi.org/10.1016/S0304-386X(03)00082-3
[37]  Fuerstenau, M.C., Nebo, C.O., Elango, B.V. and Han, K.N. (1986) The Kinetics of Leaching Galena with Ferric Nitrate. Metallurgical and Materials Transactions B, 18, 25-30.
https://doi.org/10.1007/BF02658428
[38]  Souza, A.D., Pina, P.S. and Leao, V.A. (2007) Bioleaching and Chemical Leaching as an Integrated Process in the Zinc Industry. Minerals Engineering, 20, 591-599.
https://doi.org/10.1016/j.mineng.2006.12.014

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