Bioleaching of low-grade copper sulfide ores by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans

Jun Wang , Shan Zhu , Yan-sheng Zhang , Hong-bo Zhao , Ming-hao Hu , Cong-ren Yang , Wen-qing Qin , Guan-zhou Qiu

Journal of Central South University ›› 2014, Vol. 21 ›› Issue (2) : 728 -734.

PDF
Journal of Central South University ›› 2014, Vol. 21 ›› Issue (2) : 728 -734. DOI: 10.1007/s11771-014-1995-3
Article

Bioleaching of low-grade copper sulfide ores by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans

Author information +
History +
PDF

Abstract

The grown conditions of Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans were investigated, and then experiments were conducted to research the bioleaching behaviors of crude ore of copper sulfide and hand-picked concentrates of chalcopyrite by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans. The experimental results show that the bacteria grow best when the temperature is (30±1) °C and the pH value is 2.0. The bacteria concentration is 2.24×107 mL−1 in this condition. It is found that the copper extraction yield is affected by the inoculum size and the pulp density and the extraction yield increases as the inoculum size grows. The bioleaching rates reach their highest point in sulfide copper and chalcopyrite with a pulp density of 5% and 10%, respectively. Column flotation experiments of low-grade copper sulfide ores show that the bioleaching recovery reaches nearly 45% after 75 days.

Keywords

biohydrometallurgy / chalcopyrite / Acidithiobacillus ferrooxidans / Acidithiobacillus thiooxidans / copper sulfide ore

Cite this article

Download citation ▾
Jun Wang, Shan Zhu, Yan-sheng Zhang, Hong-bo Zhao, Ming-hao Hu, Cong-ren Yang, Wen-qing Qin, Guan-zhou Qiu. Bioleaching of low-grade copper sulfide ores by Acidithiobacillus ferrooxidans and Acidithiobacillus thiooxidans. Journal of Central South University, 2014, 21(2): 728-734 DOI:10.1007/s11771-014-1995-3

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

SmithR W, MisraM. Recent developments in the bioprocessing of minerals [J]. Mineral Processing and Extractive Metallurgy Review, 1993, 12(1): 37-60

[2]

BartlettR W. Biooxidation heap pretreatment of sulfide refractory gold ore [J]. Mineral, 1996, 16(2): 89-124

[3]

MillerP C. The design and operating practice of bacterial oxidation plant using moderate thermophiles (The BacTechProcess) [C]. Biomining, Theory, Microbes and Industrial Processes, 1997, Berlin, Springer-Verlag: 81-102

[4]

SchnellH A. Bioleaching of copper [C]. Biomining, Theory, Microbes and Industrial Process, 1997, Berlin, Springer-Verlag: 21-43

[5]

PolulinR, LawrenceR W. Economic and environmentalniches of biohydrometallurgy [J]. Minerals Engineering, 1996, 9(8): 799-810

[6]

AhmadiA, SchaffieM, PetersenJ, SchippersA, RanjbarM. Production of copper cathode from oxidized copper ores by acidic leaching and two-step precipitation followed by electrowinning [J]. Hydrometallurgy, 2012, 106(1/2/3/4): 84-92

[7]

RuanR, LiuX, XouG, ChenJ, WenJ, WangD. Industrial practice of a distinct bioleaching system operated at low pH, high ferric concentration, elevated temperature and low redox potential for secondary copper sulfide [J]. Hydrometallurgy, 2011, 108(1/2): 130-135

[8]

NorrisP R, Davis-belmarC S, NicolleJ L C, Calvo-BadoL A, AngelatouV. Pyrite oxidation and copper sulfide ore leaching by halotolerant, thermotolerant bacteria [J]. Hydrometallurgy, 2010, 104(3/4): 432-436

[9]

BreedA W, DempersC J N, HansfordG S. Studies on the bioleaching of refractory concentrates [J]. Journal of the South African Institute of Mining and Metallurgy, 2000, 10(1): 389-397

[10]

EscobarB, BuccicardiS, MoralesG, WiertZ J. Biooxidation of ferrous iron and sulphide at low temperatures: Implications on acid mine drainage and bioleaching of sulphide minerals [J]. Hydrometallurgy, 2010, 104(3/4): 454-458

[11]

CameronR A, YeungC W, GreerC W, GouldW D, MortazaviS, BÉDARDP L, MorinL, LortieL, DinardoO, KennedyK J. The bacterial community structure during bioleaching of a low-grade nickel sulphide ore in stirred-tank reactors at different combinations of temperature and pH [J]. Hydrometallurgy, 2010, 104(2): 207-215

[12]

HalinenA, RahunenN, KaksonenA H, PuhakkaJ A. Heap bioleaching of a complex sulfide ore: Part II. Effect of temperature on base metal extraction and bacterial compositions [J]. Hydrometallurgy, 2009, 98(1/2): 101-107

[13]

LeeJ, AcarS, DoerrD L, BrierleyJ A. Comparative bioleaching and mineralogy of composited sulfide ores containing enargite, covellite and chalcocite by mesophilic and thermophilic microorganisms [J]. Hydrometallurgy, 2011, 105(3/4): 213-221

[14]

Rivera-SantillanR E, BallesterP A, IzquiedoM L, GonzalezFAmilsR, BallesterA. Bioleaching of a copper sulphide flotation concentrateusing mesophilic and thermophilic microorganisms [C]. Biohydrometallurgy and the Environment Toward the Mining of the 21st Century, 1999, Amsterdam, Elsevier: 61-80

[15]

GerickeM, PinchesA, van RooyenJ V. Bioleaching of a chalcopyrite concentrate using an extremely thermophilic culture [J]. Int Miner Process, 2001, 62: 243-255

[16]

Davis-belmarC S, GallardoI, DemergassoC, RautenbachG. Effect of organic extractant LIX 84IC, pH and temperature changes on bioleaching microorganisms during SX treatment [J]. Hydrometallurgy, 2012, 129/130: 135-139

[17]

LiuF-w, ZhouL-x, ZhouJ, SongX-w, WangD-zhan. Improvement of sludge dewaterability and removal of sludge-borne metals by bioleaching at optimum pH [J]. Journal of Hazardous Materials, 2012, 221/222: 170-177

[18]

TupikinaO V, NgomaI E, MinnaarS, HarrisonS T L. Some aspects of the effect of pH and acid stress in heap bioleaching [J]. Minerals Engineering, 2011, 24(11): 1209-1214

[19]

SadowskiZ, JazdzykE, KarasH. Bioleaching of copper ore flotation concentrates [J]. Minerals Engineering, 2003, 16(1): 51-53

[20]

WitneJ Y, PhillipsC V. Bioleaching of Ok Tedi copper concentrate in oxygen- and carbon dioxide-enriched air [J]. Minerals Engineering, 2001, 14(1): 25-48

[21]

ValdésJ, CárdenasJ P, QuatriniR, EsparzaM, OsorioH, DuarteF, LefimilC, SepulvedaR, JedlickiE, HolmesD S. Comparative genomics begins to unravel the ecophysiology of bioleaching [J]. Hydrometallurgy, 2010, 104(3/4): 471-476

[22]

AhmadiA, SchaffieM, PetersenJ, SchippersA, RanjbarM. Conventional and electrochemical bioleaching of chalcopyrite concentrates by moderately thermophilic bacteria at high pulp density [J]. Hydrometallurgy, 2011, 106(1/2): 84-92

[23]

AhmadiA. Kinetic modeling of bioleaching of copper sulfide concentrates in conventional and electrochemically controlled systems [J]. Hydrometallurgy, 2012, 127/128: 16-23

[24]

TakatsugiK, SasakiK, HirajimaT. Mechanism of the enhancement of bioleaching of copper from enargite by thermophilic iron-oxidizing archaea with the concomitant precipitation of arsenic [J]. Hydrometallurgy, 2011, 109(1/2): 90-96

[25]

PetersenJ, DixonD G. Competitive bioleaching of pyrite and chalcopyrite [J]. Hydrometallurgy, 2006, 83(1/2/3/4): 40-49

[26]

PoglianiC, FetsisP, DonatiE. Bioleaching of copper sulphide ore by pure and mixed cultures of mesophilic bacteria [J]. Hydrometallurgy, 2005, 87(3/4): 275-281

[27]

YangY, DiaoM-x, LiuK, QianL, QiuG-zhou. Column bioleaching of low-grade copper ore by Acidithiobacillus ferrooxidans in pure and mixed cultures with a heterotrophic acidophile Acidiphilium sp [J]. Hydrometallurgy, 2013, 131/132: 93-98

[28]

ZhuN-w, XiangY, ZhangT, WuP-x, DangZ, LiP, WuJ-hua. Bioleaching of metal concentrates of waste printed circuit boards by mixed culture of acidophilic bacteria [J]. Journal of Hazardous Materials, 2011, 192(2): 614-619

[29]

BromfieldL, AfricaC J, HarrisonS T L, van HilleR P. The effect of temperature and culture history on the attachment of Metallosphaera hakonensis to mineral sulfides with application to heap bioleaching [J]. Minerals Engineering, 2011, 24(11): 1157-1165

[30]

NatarajanK A. Effect of applied potentials on the activity and growth of thiobacillus ferrooxidans [J]. Biotechnology and Bioengineering, 1992, 39(6): 907-912

[31]

BoonM, SniderM, HansfordG S. Oxidation, kinetics of zinc sulphide with thiobacillus ferrooxidans [J]. Hydromrtallurgy, 1998, 48(2): 171-185

[32]

YaoG-c, RuanR-m, WenJ-kang. Ore leaching bacteria commonly used in biological metallurgy and basic methods of their culture improvement [J]. Metal Mine, 2002

[33]

HallbergK B. New perspectives in acid mine drainage microbiology [J]. Hydrometallurgy, 2010, 104(3/4): 448-453

[34]

JohnsonD B. Reductive dissolution of minerals and selective recovery of metals using acidophilic iron- and sulfate-reducing acidophiles [J]. Hydrometallurgy, 2012, 127/128: 172-177

[35]

McsweeneyN J, TilburyA L, NyeboerH J, MckinnonA J, SuttonD C, FranzmannP D, KaksonenA H. Molecular characterisation of the microbial community of a full-scale bioreactor treating Bayer liquor organic waste [J]. Minerals Engineering, 2011, 24(11): 1094-1099

[36]

McsweeneyN J, TilburyA L, NyeboerH J, MckinnonA J, SuttonD C, FranzmannP D, KaksonenA H. The recovery of nucleic acid from biomining and acid mine drainage microorganisms [J]. Hydrometallurgy, 2011, 108(1/2): 87-92

[37]

CameronR A, YeungC W, GreerC W, GouldW D, MortazaviS, BédardP L, MorinL, LortieL, DinardoO, KennedyK J. The bacterial community structure during bioleaching of a low-grade nickel sulphide ore in stirred-tank reactors at different combinations of temperature and pH [J]. Hydrometallurgy, 2010, 104(2): 207-215

[38]

MutchL A, WatlingH R, WatkinE L J. Microbial population dynamics of inoculated low-grade chalcopyrite bioleaching columns [J]. Hydrometallurgy, 2010, 104(3/4): 391-398

AI Summary AI Mindmap
PDF

718

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/