Column Bioleaching of Low Grade Copper Sulfide Ore at Extreme Conditions for Most Mineral Processing Bacteria

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This study is prompted by the high leaching efficiency of Zijinshan copper bio-heap leaching industrial plant. Bioleaching columns with 100 mm diameter and 1 m height were used to investigate copper bioleaching at different operating conditions. Elevated temperature, high total iron concentration and high acidity significantly increased copper leaching rate as determined by solution and residue assays. At 60 °C with 50 g/L iron (initial Fe3+/Fe2+ gram ratio 2.5), pH 1.0 and no aeration, copper extraction was achieved 90% after 60 days. However, at 30°C, 5 g/L total Fe, pH 1.5 and no aeration, copper extraction reached 80% and 85% after 90 and 200 days, respectively. Real-time PCR assay showed that only 105 cells/ml and 2×105 cells/g are in solution and on the ore surface at the condition of 60 °C 50 g/L iron and pH 1.0, respectively. In addition, a similar leaching rate was observed in the tests with and without inoculation. The column without inoculation was directly irrigated with acid mine drainage (AMD). Our results indicate high copper leaching efficiency at extreme conditions for mineral oxidizing bacteria. Inoculation and aeration are not necessary in Zijinshan copper mine bio-heap leaching process.

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318-321

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October 2013

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© 2013 Trans Tech Publications Ltd. All Rights Reserved

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[1] H.R. Watling. The bioleaching of sulphide minerals with emphasis on copper sulphides - A review. Hydrometallurgy 84 (2006), 81-108.

DOI: 10.1016/j.hydromet.2006.05.001

Google Scholar

[2] Brierley, J.A. and Brierley, C.L. Present and future commercial applications of biohydrometallurgy. Hydrometallurgy, 59 (2001), 233-239.

DOI: 10.1016/s0304-386x(00)00162-6

Google Scholar

[3] Rawlings, D.E. and Johnson, D.B. The microbiology of biomining: development and optimization of mineral-oxidizing microbial consortia. Microbiology, 153 (2007), 315-324.

DOI: 10.1099/mic.0.2006/001206-0

Google Scholar

[4] Demergasso, C.S. Microbial Succession during a Heap Bioleaching Cycle of Low Grade Copper Sulphides. Does this Knowledge Mean a Real Input for Industrial Process Design and Control? Hydrometallurgy 104 (2010), 382-390.

DOI: 10.4028/www.scientific.net/amr.71-73.21

Google Scholar

[5] Ibacetea, D., Juan, G., Hans, H. and Gabriel, A. Development at Dos Amigos in Northern Chile, ALTA Conference, Perth, WA, Australia (2005), p.17.

Google Scholar

[6] Brierley, C.L. Biohydrometallurgical prospects. Hydrometallurgy 104 (2001), 324-328.

DOI: 10.1016/j.hydromet.2010.03.021

Google Scholar

[7] Ruan Renman, Liu Xingyu, Zou Gang, Chen Jinghe, Wen Jiankang, Wang Dianzuo. Industrial practice of a distinct bioleaching system operated at low pH, high ferric concentration, elevated temperature and low redox potential for secondary copper sulfide. Hydrometallurgy 108 (2011).

DOI: 10.1016/j.hydromet.2011.03.008

Google Scholar

[8] Acar, S., Brierley, J.A., Wan, R.Y. Conditions for bioleaching a covellite-bearing ore. Hydrometallurgy 77 (2005), 239-246.

DOI: 10.1016/j.hydromet.2004.05.004

Google Scholar

[9] Bolorunduro, S. A. Kinetics of leaching of chalcocite in acid ferric sulfate media: Chemical and bacterial leaching. Master's thesis of The University of British Columbia, Canada (1999).

Google Scholar