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Abstract
For the low-grade copper sulfide ores with 0.99% of copper, of which 41.5% was primary copper sulfide, and 54.5% was secondary copper sulfide, well-controlled column bioleaching on a novel equipment was carried out to investigate the optimal conditions of pre-leaching, particle sizes of ores, temperature, spray intensity and strain consortium. Results show that copper extraction of 91.11% can be obtained after 90 d with the optimal pH value of pre-leaching of 0.8; the pH values of pre-leaching significantly affect the final copper extractions. Copper extractions of 93.11%, 91.04% and 80.45% can be obtained for the bioleaching of ores with particles size of 5–8 mm, 5–15 mm and 5–20 mm, respectively. Copper extractions are 83.77% and 91.02% for bioleaching under the conditions of room temperature and 35 ºC. Copper extractions are 77.25%, 85.45% and 91.12% for the bioleaching when flow rate of spray was 5 L/(h·m2), 10 L/(h·m2) and 15 L/(h·m2), respectively. Additionally, the strain consortium C3 is the best among the four strain consortia in bioleaching. By considering the energy consumption, the optimal conditions of bioleaching in this work are determined as pH of pre-leaching of 0.8, particles size of 5–15 mm, temperature of 35 °C, spray intensity of 15 L/(h·m2), and strain consortium C3.
Keywords
bioleaching
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column leaching
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multi-factors
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copper sulfide ores
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Jun Wang, Ming-hao Hu, Hong-bo Zhao, Lang Tao, Xiao-wen Gan, Wen-qing Qin, Guan-zhou Qiu.
Well-controlled column bioleaching of a low-grade copper ore by a novel equipment.
Journal of Central South University, 2015, 22(9): 3318-3325 DOI:10.1007/s11771-015-2872-4
| [1] |
LuA-l, SunZ-w, ZhangH. Availability analysis of copper resources in china [J]. Resources & Industries, 2010, 12(1): 12-16
|
| [2] |
WuS-k, AnC-j, DongG-m, YangD, WangY-d. Research on industrial layout and restructuring of China’s Copper mine resources [J]. China Mining Magazine, 2011, 20(10): 9-12
|
| [3] |
CHEN Jia-fu, LIANG Zhen-jie, GAO Peng. Status quote of copper resources in Chinese mainland and researches on strategies of development [J]. World Nonferrous Metals, 2006(12): 8–11. (in Chinese)
|
| [4] |
LanZ-y, HuY-h, LiuJ-s, WangJ. Solvent extraction of copper and zinc from bioleaching solutions with LIX984 and D2EHPA [J]. Journal of Central South University of Technology, 2005, 12(1): 45-49
|
| [5] |
WatlingH. The bioleaching of sulphide minerals with emphasis on copper sulphides—A review[J]. Hydrometallurgy, 2006, 84(1): 81-108
|
| [6] |
OlsonG, BrierleyJ, BrierleyC. Bioleaching review part B[J]. Applied Microbiology and Biotechnology, 2003, 63(3): 249-257
|
| [7] |
RohwerderT, GehrkeT, KinzlerK, SandW. Bioleaching review part A [J]. Applied Microbiology and Biotechnology, 2003, 63(3): 239-248
|
| [8] |
SCHNELL H A. Bioleaching of copper [M]. Biomining: Springer, 1997: 21–43.
|
| [9] |
BrierleyJ, BrierleyC. Present and future commercial applications of biohydrometallurgy [J]. Hydrometallurgy, 2001, 59(2): 233-239
|
| [10] |
AkcilA. Potential bioleaching developments towards commercial reality: Turkish metal mining’s future [J]. Minerals Engineering, 2004, 17(3): 477-480
|
| [11] |
BrierleyC. How will biomining be applied in future? [J]. Transactions of Nonferrous Metals Society of China, 2008, 18(6): 1302-1310
|
| [12] |
EhrlichH L. Past, present and future of biohydrometallurgy [J]. Process Metallurgy, 1999, 9: 3-12
|
| [13] |
PradhanN, NathsarmaK, SrinivasaR K, SuklaL, MishraB. Heap bioleaching of chalcopyrite: a review [J]. Minerals Engineering, 2008, 21(5): 355-365
|
| [14] |
ZHOU Ji-kui, NIU Yin-jian. Advance in research of biological metallurgy of sulfide ore [J]. Metal Mine, 2005(4): 24–30. (in Chinese)
|
| [15] |
ZhenS-j, QinW-q, YanZ-q, ZhangY-s, WangJ, RenL-y. J. Bioleaching of low grade nickel sulfide mineral in column reactor [J]. Transactions of Nonferrous Metals Society of China, 2008, 18(6): 1480-1484
|
| [16] |
De OliveiraD M, SobralL G S, OlsonG J, OlsonS B. Acid leaching of a copper ore by sulphur-oxidizing microorganisms [J]. Hydrometallurgy, 2014, 148: 223-227
|
| [17] |
DongY-b, LinH, XuX-f, ZhangY, GaoY-j, ZhouS-s. Comparative study on the bioleaching, biosorption and passivation of copper sulfide minerals [J]. International Biodeterioration & Biodegradation, 2013, 84: 29-34
|
| [18] |
DongY-b, LinH, XuX-f, ZhouS-s. Bioleaching of different copper sulfides by acidithiobacillus ferrooxidans and its adsorption on minerals [J]. Hydrometallurgy, 2013, 140: 42-47
|
| [19] |
WangJ, QinW-q, ZhangY-s, YangC-r, ZhangJ-w, NaiS-s, ShangH, QiuG-z. Bacterial leaching of chalcopyrite and bornite with native bioleaching microorganism [J]. Transactions of Nonferrous Metals Society of China, 2008, 18(6): 1468-1472
|
| [20] |
ZhaoH-b, WangJ, HuM-h, QinW-q, ZhangY-s, QiuG-z. Synergistic bioleaching of chalcopyrite and bornite in the presence of Acidithiobacillus ferrooxidans [J]. Bioresource Technology, 2013, 149: 71-76
|
| [21] |
WatlingH R, CollinsonD M, FjastadS, KaksonenA H, LiJ, MorrisC, PerrotF A, ReaS M, ShiersD W. Column bioleaching of a polymetallic ore: Effects of pH and temperature on metal extraction and microbial community structure [J]. Minerals Engineering, 2014, 58: 90-99
|
| [22] |
TupikinaO V, MinnaarS H v, HilleR P v, WykN, RautenbachG F, DewD, HarrisonS T L. Determining the effect of acid stress on the persistence and growth of thermophilic microbial species after mesophilic colonisation of low grade ore in a heap leach environment [J]. Minerals Engineering, 2013, 53: 152-159
|
| [23] |
FaganM A, SedermanA J, HarrisonS T L, JohnsM L. Phase distribution identification in the column leaching of low grade ores using MRI [J]. Minerals Engineering, 2013, 48: 94-99
|
| [24] |
KathrynW, HanneleA, BarrieJ D. Microbiological and geochemical dynamics in simulated-heap leaching of a polymetallic sulfide ore [J]. Biotechnology and Bioengineering, 2008, 101(4): 739-750
|
| [25] |
MohapatraB K, SinghaS, SuklaaL B, RaoaK S, MishraaB K. Study on surface alteration behavior during column bioleaching [J]. Mineral Processing & Extractive Metallurgy Review, 2012, 33(6): 374-390
|
| [26] |
GroudevaV. Bioleaching of a copper sulphide ore at different temperatures [J]. Advanced Materials Research, 2013, 10: 258-261
|
| [27] |
ChenB-w, WuB, LiuX-y, WenJ-k. Comparison of microbial diversity during column bioleaching of chalcopyrite at different temperatures [J]. Journal of Basic Microbiology, 2014, 54(6): 491-499
|
| [28] |
RuanR-m, ZouG, ZhongS-p, WuZ-l, ChanB, WangD-z. Why Zijinshan copper bioheapleaching plant works efficiently at low microbial activity—Study on leaching kinetics of copper sulfides and its implications [J]. Minerals Engineering, 2013, 48: 36-43
|
| [29] |
ZouG. Column bioleaching of low grade copper sulfide ore at extreme conditions for most mineral processing bacteria [J]. Advanced Materials Research, 2013, 10: 318-321
|
| [30] |
MahmoudianA R, SadrnezhaadS K, ManafiZ. Simulation of bioleaching heat effects for enhancement of copper recovery from sarcheshmeh chalcopyrite [J]. Metallurgical and Materials Transactions B, 2014, 45(4): 1204-1212
|
| [31] |
ChenM-l, ZhangL, GuG-h, HuY-h, SuL-j. Effects of microorganisms on surface properties of chalcopyrite and bioleaching [J]. Transactions of Nonferrous Metals Society of China, 2008, 18(6): 1421-1426
|
| [32] |
AcresR G, HarmerS L, BeattieD A. Synchrotron XPS, NEXAFS, and ToF-SIMS studies of solution exposed chalcopyrite and heterogeneous chalcopyrite with pyrite [J]. Minerals Engineering, 2010, 23: 928-936
|
| [33] |
ValdÉSJ, PedrosoI, QuatriniR, DodsonR J, TettelinH, BlakeR, EisenJ A, HolmesD S. Acidithiobacillus ferrooxidans metabolism: From genome sequence to industrial applications [J]. BMC Genomics, 2008, 9(1): 597
|
| [34] |
AbdollahiH, ShafaeiS Z, NoaparastM, ManafiZ N S I, TuovinenO H. Mesophilic and thermophilic bioleaching of copper from a chalcopyrite-containing molybdenite concentrate [J]. International Journal of Mineral Processing, 2014, 128: 25-32
|
| [35] |
WangJ, ZhuS, ZhangY-s, ZhaoH-b, HuM-h, YangC-r, QinW-q, QiuG-z. Bioleaching of low-grade copper sulfide ores by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans [J]. Journal of Central South University, 2014, 21(2): 728-734
|
| [36] |
AfricaC J, VanH R P, HarrisonS T L. Attachment of Acidithiobacillus ferrooxidans and Leptospirillum ferriphilum cultured under varying conditions to pyrite, chalcopyrite, low-grade ore and quartz in a packed column reactor [J]. Applied Microbiology and Biotechnology, 2013, 97(3): 1317-1324
|
| [37] |
WangJ, ZhaoH-b, QinW-q, QiuG-z. Bioleaching of complex polymetallic sulfide ores by mixed culture [J]. Journal of Central South University, 2014, 21(7): 2633-2637
|
| [38] |
ZhaoH-b, WangJ, QinW-q, HuM-h, ZhuS, QiuG-z. Electrochemical dissolution process of chalcopyrite in the presence of mesophilic microorganisms [J]. Minerals Engineering, 2015, 71: 159-169
|
| [39] |
YuR-l, ZhongD-l, MiaoL, WuF-d, QiuG-z, GuG-h. Relationship and effect of redox potential, jarosites and extracellular polymeric substances in bioleaching chalcopyrite by acidithiobacillus ferrooxidans [J]. Transactions of Nonferrous Metals Society of China, 2011, 21(7): 1634-1640
|