Comparative study on different steel slags as neutralising agent in bioleaching
Tài liệu tham khảo
Broadhurst, 1994, Neutralisation of arsenic bearing BIOX® liquors, Minerals Engineering, 7, 1029, 10.1016/0892-6875(94)90031-0
Cadena, 1995, Arsenate precipitation using ferric iron in acidic conditions
Chetty, K.R., Marais, H.J., Kruger, M.J., 2000. The importance of pH control in the biooxidation process. Available from http://www.bioxgf.co.za/content/publications/pdfs/Importance%20of%20pH%20Control.pdf.
Cunha, 2006, Characterisation of by-products for use as neutralizing agent in bioleaching, vol. 2, 1392
Cunha, 2008, Possibilities to use oxidic by-products for precipitation of Fe/As from leaching solutions for subsequent base metal recovery, Minerals Engineering, 21, 38, 10.1016/j.mineng.2007.07.009
Dayan, 2001, Mechanisms of chromium toxicity, carcinogenicity and allergenicity: review of the literature from 1985 to 2000, Human & Experimental Toxicology, 20, 439, 10.1191/096032701682693062
Deveci, 2004, Bioleaching of complex zinc sulphides using mesophilic and thermophilic bacteria: comparative importance of pH and iron, Hydrometallurgy, 73, 293, 10.1016/j.hydromet.2003.12.001
Dew, 1995, Comparison of performance for continuous bio-oxidation of refractory gold ore flotation concentrates, 239
Frank, 1996, Vanadium poisoning of cattle with basic slag. Concentrations in tissues from poisoned animals and from a reference, slaughter-house material, 181 (1), 73
Gutknecht, 1981, Hydrofluoric and nitric acid transport through lipid bilayer membranes, Biochimica Biophysica Acta (BBA) — Biomembranes, 644, 153, 10.1016/0005-2736(81)90071-7
Hedin, 1994, Passive treatment of acid mine drainage with lime stone, Journal of Environment Quality, 23, 1338, 10.2134/jeq1994.00472425002300060030x
Pettit, 2001, SC-database for Windows, Academic Software version 5.4
Rawlings, 2003, Biomineralization of metal-containing ores and concentrates, Trends in Biotechnology, 21, 38, 10.1016/S0167-7799(02)00004-5
Rohwerder, 2003, Bioleaching review part A: progress in bioleaching: fundamentals and mechanisms of bacterial metal sulfide oxidation, Applied Microbiology and Biotechnology, 63, 239, 10.1007/s00253-003-1448-7
Russo, 2005, Molecular mechanisms of hexavalent chromium-induced apoptosis in human bronchoalveolar cells, American Journal of Respiratory Cell and Molecular Biology, 33, 589, 10.1165/rcmb.2005-0213OC
Sand, 2001, (Bio)chemistry of bacterial leaching-direct vs. indirect bioleaching, Hydrometallurgy, 59, 159, 10.1016/S0304-386X(00)00180-8
Schippers, 1999, Bacterial leaching of metal sulfides proceeds by two indirect mechanisms via thiosulfate or via polysulfides and sulfur, Applied and Environmental Microbiology, 65, 319, 10.1128/AEM.65.1.319-321.1999
Silverman, 1959, Studies on the chemoautotrophic iron bacterium Ferrobacillus ferrooxidans I. An improved medium and a harvesting procedure for securing high cell yields, Journal of Bacteriology, 77, 642, 10.1128/JB.77.5.642-647.1959
Stephenson, 1997, Wiluna BIOX Plant — expansion and new developments
Sundkvist, 2005, Fluorine toxicity in bioleaching systems, 19
The European Slag Association (Euroslag). Legal status of slags. Position paper. January 2006. http://www.euroslag.org/media/Position_paper_Jan_2006.pdf, March 2006.
Tributsch, 2001, Direct versus indirect bioleaching, Hydrometallurgy, 59, 177, 10.1016/S0304-386X(00)00181-X
van Aswegen, 1999, Advances in application of the BIOX® process for the refractory gold ores, Minerals and metallurgical processing, 16, 61
van Aswegen, 2007, The BIOX™ process for the treatment of refractory gold concentrates, 1
Ziemkiewicz, 1998, Steel slag: Applications for AMD control, 44