Use of mesophilic and thermophilic bacteria for the improvement of copper extraction from a low-grade ore
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Abstract
Bioleaching was examined for copper extraction from a low grade ore using mesophilic and moderate thermophilic bacteria. Five equal size columns were used for the leaching of the ore. Sulfuric acid solution with a flow rate of 3.12 L·m−2·h−1 and pH 1.5 passed through each column continuously for 90 d. In the first and the second column, bioleaching was performed without agglomeration of the ore and on the agglomerated ore, respectively. 28wt% of the copper was extracted in the first column after 40 d, while this figure was 38wt% in the second column. After 90 d, however, the overall extractions were almost the same for both of them. Bioleaching with mesophilic bacteria was performed in the third column without agglomeration of the ore and in the fourth column on the agglomerated ore. After 40 d, copper extractions in the third and the fourth columns were 62wt% and 70wt%, respectively. Copper extractions were 75wt% for both the columns after 90 d. For the last column, bioleaching was performed with moderate thermophilic bacteria and agglomerated ore. Copper extractions were 80wt% and 85wt% after 40 and 90 d, respectively. It was concluded that crushing and agglomeration of the ore using bacteria could enhance the copper extraction considerably.
Keywords
bioleaching mesophilic bacteria thermopilic bacteria copper extraction agglomerationReferences
- [1]E. Darezereshki, M. Schaffei, Z. Manafi, and M. Lotfalian, Optimization of copper from Sarcheshmeh low grade ores by bacterial leaching, J. Sep. Sci. Eng., 1(2009), No.2, p.15.Google Scholar
- [2]M. Ranjbar, M. Schaffie, M. Pazouki, R. Ghazi, A. Akbary, S. Zanddevakili, and S.A. Seiedbaghery, Application potential of biohydrometallurgy in the Iranian mining industry, Adv. Mater. Res., 20–21(2007), p.38.CrossRefGoogle Scholar
- [3]T. Rohwerder, T. Gehrke, K. Kinzler, and W. Sand, Bioleaching review part A: Progress in bioleaching: fundamentals and mechanisms of bacterial metal sulfide oxidation, Appl. Microbiol. Biotechnol., 63(2003), p.239.CrossRefGoogle Scholar
- [4]Z. Sarcheshmehpour, A. Lakzian, A. Fotovat, A.R. Berenji, G.H. Haghnia, and S.A. Seyed Bagheri, Possibility of using chemical fertilizers instead of 9K medium in bioleaching process of low-grade sulfide copper ores, Hydrometallurgy, 96(2009), p.264.CrossRefGoogle Scholar
- [5]H.R. Watling, The bioleaching of sulphide minerals with emphasis on copper sulphides: a review, Hydrometallurgy, 84(2006), p.81.CrossRefGoogle Scholar
- [6]G.E. McClelland, Agglomerated and unagglomerated heap leaching behavior is compared in production heaps, Min. Eng., 38(1986), p.500.Google Scholar
- [7]S.C. Bouffard, Review of agglomeration practice and fundamentals in heap leaching, Miner. Process. Extr. Metall. Rev., 26(2005), p.233.CrossRefGoogle Scholar
- [8]K.A. Lewandowski and S.K. Kawatra, Agglomeration for copper heap leaching, [in] Proceeding of the Sixth International Copper-Cobre Conference, Toronto, 2007, p.439.Google Scholar
- [9]S. Acar, J.A. Brierley, and R.Y. Wan, Conditions for bioleaching a covellite-bearing ore, Hydrometallurgy, 77(2005), p.239.CrossRefGoogle Scholar
- [10]A.K. Halinen, N. Rahunen, A.H. Kaksonen, and J.A. Puhakka, Heap bioleaching of a complex sulfide ore: Part I. Effect of pH on metal extraction and microbial composition in pH controlled columns, Hydrometallurgy, 98(2009), p.92.CrossRefGoogle Scholar
- [11]A.K. Halinen, N. Rahunen, A.H. Kaksonen, and J.A. Puhakka, Heap bioleaching of a complex sulfide ore: Part II. Effect of temperature on base metal extraction and bacterial compositions, Hydrometallurgy, 98(2009), p.101.CrossRefGoogle Scholar
- [12]S.A. Seyed Bagheri and H.R. Hassani, Isolation and preliminary identification of some iron and sulfur oxidizing bacteria from Sarcheshmeh Copper Mine, [in] S.T. Ciminelli and O. Garcia eds. Biohydrometallurgy: Fundamentals, Technology and Sustainable Development (part A), Elsevier, Amsterdam, 2001, p.393.Google Scholar
- [13]M. Lotfalian, M. Ranjbar, M. Schaffie, E. Darezereshki, S.A. Seyedbagheri, and Z. Manafi, Bioleaching of low-grade chalcopyritic ore using thermophile bacteria, J. Sep. Sci. Eng., 1(2009), No.1, p.57.Google Scholar
- [14]G.S. Hansford and T. Vargas, Chemical and electrochemical basis of bioleaching processes, Hydrometallurgy, 59(2001), No.2–3, p.135.CrossRefGoogle Scholar
- [15]K.A. Natarajan, Bioleaching of sulphides under applied potentials, Hydrometallurgy, 29(1992), p.161.CrossRefGoogle Scholar