Microbial succession during a heap bioleaching cycle of low grade copper sulfides Does this knowledge mean a real input for industrial process design and control
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Cecilia Demergasso | Pamela Soto | C. Demergasso | F. Galleguillos | F. Galleguillos | M. Serón | V. Iturriaga | M. Serón | Pamela Soto | V. Iturriaga
[1] P. Franzmann,et al. Moderate thermophiles including “Ferroplasma cupricumulans” sp. nov. dominate an industrial-scale chalcocite heap bioleaching operation , 2006 .
[2] Yue-hua Hu,et al. Compositions and Structures of Archaeal Communities in Acid Mineral Bioleaching Systems of Dongxiang Copper Mine and Yinshan Lead–Zinc Mine, China , 2008, Current Microbiology.
[3] Yue-hua Hu,et al. Microbial diversity in acid mineral bioleaching systems of dongxiang copper mine and Yinshan lead–zinc mine , 2008, Extremophiles.
[4] D. Johnson,et al. Microbial communities in a porphyry copper tailings impoundment and their impact on the geochemical dynamics of the mine waste. , 2007, Environmental microbiology.
[5] Cecilia Demergasso,et al. Characterization of Oxidizing Activity of a Microbial Community in an Industrial Bioleaching Heap , 2009 .
[6] B. Escobar,et al. Determination of sulfur and iron oxidation bacteria by the most probable number (MPN) technique , 1999 .
[7] W. Sand. Ferric iron reduction by Thiobacillus ferrooxidans at extremely low pH-values , 1989 .
[8] M. Boon,et al. The Mechanism and Kinetics of Bioleaching Sulphide Minerals , 1998 .
[9] Wen-Sheng Shu,et al. Culturable and molecular phylogenetic diversity of microorganisms in an open-dumped, extremely acidic Pb/Zn mine tailings , 2008, Extremophiles.
[10] F. A. Perrot,et al. Impact of the copper solvent extraction reagent LIX 984N on the growth and activity of selected acidophiles , 2009 .
[11] T. Vargas,et al. Novel electrochemical-enzymatic model which quantifies the effect of the solution Eh on the kinetics of ferrous iron oxidation with Acidithiobacillus ferrooxidans. , 2002, Biotechnology and bioengineering.
[12] E. Casamayor,et al. Molecular characterization of microbial populations in a low-grade copper ore bioleaching test heap , 2005 .
[13] C. Brierley. Bacterial succession in bioheap leaching , 2001 .
[14] D. Johnson,et al. Microbiological and geochemical dynamics in simulated‐heap leaching of a polymetallic sulfide ore , 2008, Biotechnology and bioengineering.
[15] J. Molina,et al. Comparison between the Bacterial Populations from Solutions and Minerals in 1 m Test Columns and the Industrial Low Grade Copper Sulphide Bioleaching Process in the Escondida Mine, Chile , 2009 .
[16] K. Inagaki,et al. Purification and some properties of sulfur:ferric ion oxidoreductase from Thiobacillus ferrooxidans , 1987, Journal of bacteriology.
[17] Cecilia Demergasso,et al. Dynamic of active microorganisms inhabiting a bioleaching industrial heap of low‐grade copper sulfide ore monitored by real‐time PCR and oligonucleotide prokaryotic acidophile microarray , 2009, Microbial biotechnology.
[18] J. Ross Quinlan,et al. C4.5: Programs for Machine Learning , 1992 .
[19] Cecilia Demergasso,et al. Microbial Succession during a Heap Bioleaching Cycle of Low Grade Copper Sulphides. Does this Knowledge Mean a Real Input for Industrial Process Design and Control? , 2009 .
[20] G. Qiu,et al. Microbial populations in acid mineral bioleaching systems of Tong Shankou Copper Mine, China , 2007, Journal of applied microbiology.
[21] Leo Breiman,et al. Classification and Regression Trees , 1984 .
[22] W. Loh,et al. SPLIT SELECTION METHODS FOR CLASSIFICATION TREES , 1997 .
[23] G. V. Kass. An Exploratory Technique for Investigating Large Quantities of Categorical Data , 1980 .
[24] Pedro A. Galleguillos,et al. Identification of differentially expressed genes in an industrial bioleaching heap processing low-grade copper sulphide ore elucidated by RNA arbitrarily primed polymerase chain reaction , 2008 .
[25] J. R. Quinlan,et al. Data Mining Tools See5 and C5.0 , 2004 .
[26] H. Tributsch,et al. Reasons why 'Leptospirillum'-like species rather than Thiobacillus ferrooxidans are the dominant iron-oxidizing bacteria in many commercial processes for the biooxidation of pyrite and related ores. , 1999, Microbiology.
[27] Isamu Suzuki,et al. Ferrous Iron and Sulfur Oxidation and Ferric Iron Reduction Activities of Thiobacillus ferrooxidans Are Affected by Growth on Ferrous Iron, Sulfur, or a Sulfide Ore , 1990, Applied and environmental microbiology.