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Kinetics of nickel extraction from Indonesian saprolitic ore by citric acid leaching under atmospheric pressure

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Abstract

The kinetics of leaching of a saprolitic ore from Indonesia by citric acid solution under atmospheric pressure was investigated. An examination of the effects of leaching temperature, citric acid concentration, pulp density and ore particle size on the dissolution rate ofnickel found that they all had significant influence on the rate. The highest nickel recovery (95.6 percent) was achieved under the leaching conditions of ore particle size of 212–355 microns, citric acid concentration of 1 M, leaching time of 15 days, pulp density of 20 weight/volume percent, leaching temperature of 40°C and shaker speed of 200 rpm. The shrinking core model was found to be appropriate for describing the leaching kinetics of this ore in citric acid solutions at atmospheric pressure. The experimental data were well interpreted by this model with rate ofreaction controlled by diffusion through the solid product layer. Using the Arrhenius expression, the apparent activation energy for nickel dissolution was evaluated as 12.38 kJ/mol. Finally, on the basis of the shrinking core model, a proposed empirical kinetic model for the leaching of nickel from this Indonesian saprolitic ore was expressed as a mathematical model, which was verified as consistent with the obsenved experimental results.

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References

  • Behera, S.K., Panda, P.P., Singh, S., Pradhan, N., Sukla, L.B., and Mishra, B.K., 2011, “Study on reaction mechanism of bioleaching of nickel and cobalt from lateritic chromite overburdens,” International Biodeterioration & Biodegradation, Vol. 65, pp. 1035–1042.

    Article  Google Scholar 

  • Fan, R., and Gerson, A.R., 2013, “Mineralogical characterization of Indonesian laterites prior to and post atmospheric leaching,” Hydrometallurgy, Vol. 134–135, pp. 102–109.

    Article  Google Scholar 

  • Gharabaghi, M., Irannajad, M., and Noaparast, M., 2010, “A review of the beneficiation of calcareous phosphate ores using organic acid leaching,” Hydrometallurgy, Vol. 103, pp. 96–107.

    Article  Google Scholar 

  • Guo, X., Li, D., Park, K.H., Tian, Q., and Wu, Z., 2009, “Leaching behavior of metals from a limonitic nickel laterite using a sulfation-roasting-leaching process,” Hydrometallurgy, Vol. 99, pp. 144–150.

    Article  Google Scholar 

  • Habashi, F., 1969, Principles of Extractive Metallurgy, General Principles, Vol. 1, Gordon and Breach, New York, 413 pp.

  • Hou, X., Xiao, L., Gao, C., Zhang, Q., and Zeng, L., 2010, “Kinetics of leaching selenium from Ni—Mo ore smelter dust using sodium chlorate in a mixture of hydrochloric and sulfuric acids,” Hydrometallurgy Vol. 104, pp. 76–80.

    Article  Google Scholar 

  • Levenspiel, O., 1999, Chemical Reaction Engineering, 2nd Edition, John Wiley, 684 pp.

    Google Scholar 

  • Liu, K., Chen, Q., Yin, Z., Hu, H., and Ding, Z., 2012, “Kinetics of leaching of a Chinese laterite containing maghemite and magnetite in sulfuric acid solutions,” Hydrometallurgy, Vol. 125–126, pp. 125–136.

    Article  Google Scholar 

  • Lu, J., Liu, S., Du, W., Pan, F., and Yang, S., 2013, “The effect of sodium sulphate on the hydrogen reduction process of nickel laterite ore,” Minerals Engineering, Vol. 49, pp. 154–164.

    Article  Google Scholar 

  • Luo, W., Feng, Q., Ou, L., Zhang, G., and Chen, Y., 2010, “Kinetics of saprolitic laterite leaching by sulphuric acid at atmospheric pressure,” Minerals Engineering, Vol. 23, pp. 458–462.

    Article  Google Scholar 

  • McDonald, R.G., and Whittington, B.I., 2008, “Atmospheric acid leaching of nickel laterites review. Part II. Chloride and bio-technologies,” Hydrometallurgy, Vol. 91, pp. 56–69.

    Article  Google Scholar 

  • Merchant Research and Consulting Ltd, 2014, “Nickel: 2014 Market Review and Forecast,” January, 57 pp.

    Google Scholar 

  • Mubarok, M.Z., Astuti, W., and Chaerun, S.K., 2011, “Leaching behavior of nickel from Indonesian laterite ore in some organic acids,” Proceedings of the International Mineral Processing Symposium, Turkey.

    Google Scholar 

  • Romankiw, L.T., and Bruyn, D., 1964, Unit Process in Hydrometallurgy, M.E. Wadsworth and F.T Davis, eds., Academic Press, New York, p. 62.

  • Sohn, H.Y., and Wadsworth, M.E., 1979, Rate Process of Extractive Metallurgy, Plenum Press, New York and London, 472 pp.

    Book  Google Scholar 

  • Sufriadin, Arifudin Idrus, Subagyo Pramumijoyo, I. WayanWarmada, and Akira Imai, 2011, “Study on mineralogy and chemistry of the saprolitic nickel ores from Soroako, Sulawesi, Indonesia: Implication for the lateritic ore processing,” J. SE. Asian Appl. Geol., Jan–Jun 2011, Vol. 3, No. 1, pp. 23–33.

    Google Scholar 

  • Tang, J.A., and Valix, M., 2006, “Leaching of low grade limonite and nontronite ores by fungi metabolic acids,” Minerals Engineering, Vol. 19, pp. 1274–1279.

    Article  Google Scholar 

  • Tzeferis, P.G., and Agatzini-Leonardou, S., 1994, “Leaching of nickel and iron from Greek non-sulphide nickeliferrous ores by organic acid,” Hydrometallurgy, Vol. 36, No. 3, pp. 345–360.

    Article  Google Scholar 

  • Veglio, F., Trifoni, M., Pagnanelli, F., and Toro, L., 2001, “Shrinking core model with variable activation energy: A kinetic model of manganiferous ore leaching with sulfuric acid and lactose,” Hydrometallurgy, Vol. 60, pp. 167–179.

    Article  Google Scholar 

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Correspondence to T. Hirajima.

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Paper number MMP-14-053.

Discussion of this peer-reviewed and approved paper is invited and must be submitted to SME Publications Dept. prior to Feb. 29, 2016.

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Astuti, W., Hirajima, T., Sasaki, K. et al. Kinetics of nickel extraction from Indonesian saprolitic ore by citric acid leaching under atmospheric pressure. Mining, Metallurgy & Exploration 32, 176–185 (2015). https://doi.org/10.1007/BF03402286

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  • DOI: https://doi.org/10.1007/BF03402286

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