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Bioleaching Of Nickel Laterite Ore Using Halotolerant Aspergillus Foetidus Under Saline ConditionsBy Vijaya Thangavelu
Biological leaching of low-grade nickel laterite is based on a non-traditional leaching of oxide minerals using heterotrophic micro-organisms. The organisms solubilise metals by excreting organic acid
Jan 1, 2006
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Bioleaching of Nickel-Cobalt Oxide OresBy P Tzeferis
An exploratory laboratory work was carried out on microbial leaching of poor non-sulphide nickel ores, not amenable to conventional mineral processing operations. The results have shown that domestic
Jan 1, 1997
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Bioleaching of Pyrrhotite Tailings for Ni Extraction- Insights into an Adaptive Evolution StudyBy Cheryl Devine, Radhakrishnan Mahadevan, Vladimiros G. Papangelakis, Srinath Garg
The microbial-mediated recovery of valuable metals locked in mining wastes presents an economical alternative to conventional hydrometallurgical processes. The present study investigated the bioleachi
Jan 1, 2015
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Bioleaching of Pyrrhotite Tailings for Ni Extractioninitial Scoping TestsBy E. Krause, V. G. Papangelakis, S. Garg, R. Mahadevan, E. Edwards
"Bioleaching uses iron and sulfur-oxidizing bacteria to extract base metals from sulfide minerals. As bioleaching involves breaking the iron-sulfur bonds by ferric attack, the biologically mediated ra
Jan 1, 2012
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Bioleaching of Waste Nickel Condenser PowderBy Yasuo Kudo, Wu, Hayato Sato, Hiroshi Nakazawa, Shouming
"In order to recover copper from a waste nickel condenser powder, bioleaching experiments were carried out using Thiobacillus ferrooxidans in a shaking flask. The content of nickel and copper in the w
Jan 1, 2000
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Bioleaching of Weathered Saprolite - Heavy Metal Adaptation Mechanisms of Aspergillus foetidusBioleaching of Weathered Saprolite - Heavy Metal Adaptation Mechanisms of Aspergillus foetidus Nickel laterite ores remain important to the future supply of Ni and Co as they contain the bulk of know
Sep 13, 2010
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Bioleaching Performances Comparison between a Series of Mechanically Agitated Tanks and a Bubble ColumnBy F Battaglia-Brunet, D. H. Morin, Foucher S. ’
In the mineral-processing field, bioleaching of metal sulphide concentrates is currently operated in very large mechanically agitated tanks. Such bioreactors have considerable requirements in terms of
Jan 1, 2003
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Bioleaching Performances Comparison Between a Series of Mechanically Agitated Tanks and a Bubble Column (c65c1c77-589b-410b-821a-7910f3ed8f98)By Morin D. H., Battaglia-Brunet F., D'Hugues P.
"In the mineral-processing field, bioleaching of metal sulphide concentrates is currently operated in very large mechanically agitated tanks. Such bioreactors have considerable requirements in terms o
Jan 1, 2003
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Bioleaching Process For Bougainville Copper LimitedBy Kevork Chouzadjian, Gary Davis, Nicholas Katsikaros, Bruce Kelley, Mellie Mavatoi
A process has been developed to recover gold and copper from two waste materials at the Bougainville Copper Limited mine in Papua New Guinea. It involves the bioleaching, in reactors, of a pyrite conc
Jan 1, 1990
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Bioleacidng of Fine Low Grade Copper OresBy M. Oliazadeh
The bioleaching of fine low grade copper sulfide ore is described. A sample of ground (> 1 mm) copper ore from Sarcheshmeh, Iran, was subjected to a series of agglomeration procedures and subsequently
Jan 1, 2007
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Biolixiviación clorurada como opción tecnológica para tratamiento de minerales sulfurados de cobreBy Elmer Pabel Huayna Peraltilla
El proceso de lixiviación es un método para el tratamiento de minerales sulfuros y sulfuros mixtos que consiste en la utilización de un consorcio microbiano acidófilo y una solución rica en cloruro de
Sep 1, 2013
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Biological Alkalinity Generation in Acid Mine DrainageBy M. Kalin
"Ecological Engineering and Biological Polishing technology is a decommissioning approach for inactive coal, uranium and base metal operations. To improve acid mine drainage water some fundamental asp
Jan 1, 1991
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Biological and Chemical Selenium Removal From Precious Metals SolutionsBy K. R. Gardner, P. B. Altringer, R. H. Lien
The Bureau of Mines, U. S. Department of the Interior, is investigating biological and chemical reduction of selenate and selenite from waste waters. A mixed bacterial culture, isolated from agricultu
Jan 1, 1991
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Biological Column Leaching of Chalcocite OreA biological column leach testwork program was undertaken on a chalcocite ore. Three tests were conducted in all, using 65 in x 100 mm columns in three sections. The tests were started with varying
Jan 1, 1994
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Biological Column Leaching Of Three Kids Manganese OreBy D. L. Lampshire
Biological leaching using native heterotrophic bacteria was studied by the U.S. Bureau of Mines as a means of extracting manganese from a domestic low-grade wad ore. Column heap leaching simulation te
Jan 1, 1993
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Biological Cyanide DegradationBy D. J. Adams
Cyanide heap leaching is the predominant technology used in processing low-grade gold ores. During closure ora heap leach operation, residual cyanide must be removed from the process and waste solutio
Jan 1, 1998
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Biological Degradation Of Solvent Extraction Circuit Plant OrganicBy Nelson Collao I.
Loss of the organic phase from solvent extraction circuits is a major cost factor for SXEW operations. Recognized sources of loss include evaporation, entrainment, and biological degradation. The me
Jan 1, 2003
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Biological Environmental Impacts Of Copper-Nickel Development In MinnesotaBy Robert H. Poppe
The Regional Copper-Nickel Study examined the potential impacts of copper-nickel sulfide mining, concentrating and smelting operations in northeastern Minnesota and gathered extensive monitoring data
Jan 1, 1980
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Biological Field Treatment Applications in Gold Heap Leach ClosuresBy Leslie C. Thompson
The heap leach process used for recovering gold from oxide and sulfide ores is operated as a closed circuit system in which the cyanide process solutions are continuously recycled. In a well-designed
Jan 1, 1990
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Biological Filtration of Industrial Effluent Water: A Successful Case StudyThe production of 100,000 tonnes per year of synthetic rutile from the processing of ilmenite, coal and copperas (iron sulphate) produces 200 cubic metres per hour of effluent water. A 2.0 hectare
Jan 1, 1988