Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system

dc.contributor.authorGovender, Elaine
dc.contributor.authorBryan, Christopher G
dc.contributor.authorHarrison, Susan T L
dc.date.accessioned2016-08-18T11:25:28Z
dc.date.available2016-08-18T11:25:28Z
dc.date.issued2013
dc.date.updated2016-08-18T11:23:21Z
dc.description.abstractMicrobial colonisation of low grade sulphidic ores and subsequent growth in heap bioleaching systems has not been quantified rigorously. In this study, an experimental system simulating the sub-processes that occur at the agglomerate scale was used to quantify the colonisation, growth and propagation of Acidithiobacillus ferrooxidans in an unsaturated bed of crushed and agglomerated low grade chalcopyrite ore. The relative distribution of the microorganisms in the flowing leachate solution (‘PLS’), the stagnant interstitial liquid and weakly and strongly attached to the mineral surfaces was determined at various time points during the leach. There was a distinct difference in population dynamics in each of these discrete phases. The microbial cells present in the interstitial phase dominated the microbial population in the ore bed. Particularly, the microbial concentration in the free flowing PLS was found to be a poor representation of the ore-associated microbial population. The calculated growth rate of At. ferrooxidans in the PLS was unreasonably high when modelled as a continuous system, indicating that change in cell concentration in the PLS was dominated by transfer from the mineral ore associated population. However, the transfer rate was not correlated directly to changes in either the interstitial or attached population sizes. Therefore, unless transfer rates can be accounted for, PLS population dynamics do not accurately represent those in the column as a whole. Growth rates of microorganisms in the interstitial, weakly mineral-attached and strongly mineral-attached phases better predicted growth of At. ferrooxidans on the whole ore system owing to the dominance of the microbial location in these phases.en_ZA
dc.identifierhttp://dx.doi.org/10.1016/j.mineng.2012.09.010
dc.identifier.apacitationGovender, E., Bryan, C. G., & Harrison, S. T. L. (2013). Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system. <i> Minerals Engineering</i>, http://hdl.handle.net/11427/21315en_ZA
dc.identifier.chicagocitationGovender, Elaine, Christopher G Bryan, and Susan T L Harrison "Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system." <i> Minerals Engineering</i> (2013) http://hdl.handle.net/11427/21315en_ZA
dc.identifier.citationGovender, E., Bryan, C. G., & Harrison, S. T. (2013). Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system. Minerals Engineering, 48, 108-115.en_ZA
dc.identifier.issn0892-6875en_ZA
dc.identifier.ris TY - Journal Article AU - Govender, Elaine AU - Bryan, Christopher G AU - Harrison, Susan T L AB - Microbial colonisation of low grade sulphidic ores and subsequent growth in heap bioleaching systems has not been quantified rigorously. In this study, an experimental system simulating the sub-processes that occur at the agglomerate scale was used to quantify the colonisation, growth and propagation of Acidithiobacillus ferrooxidans in an unsaturated bed of crushed and agglomerated low grade chalcopyrite ore. The relative distribution of the microorganisms in the flowing leachate solution (‘PLS’), the stagnant interstitial liquid and weakly and strongly attached to the mineral surfaces was determined at various time points during the leach. There was a distinct difference in population dynamics in each of these discrete phases. The microbial cells present in the interstitial phase dominated the microbial population in the ore bed. Particularly, the microbial concentration in the free flowing PLS was found to be a poor representation of the ore-associated microbial population. The calculated growth rate of At. ferrooxidans in the PLS was unreasonably high when modelled as a continuous system, indicating that change in cell concentration in the PLS was dominated by transfer from the mineral ore associated population. However, the transfer rate was not correlated directly to changes in either the interstitial or attached population sizes. Therefore, unless transfer rates can be accounted for, PLS population dynamics do not accurately represent those in the column as a whole. Growth rates of microorganisms in the interstitial, weakly mineral-attached and strongly mineral-attached phases better predicted growth of At. ferrooxidans on the whole ore system owing to the dominance of the microbial location in these phases. DA - 2013 DB - OpenUCT DP - University of Cape Town J1 -  Minerals Engineering LK - https://open.uct.ac.za PB - University of Cape Town PY - 2013 SM - 0892-6875 T1 - Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system TI - Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system UR - http://hdl.handle.net/11427/21315 ER - en_ZA
dc.identifier.urihttp://hdl.handle.net/11427/21315
dc.identifier.urihttp://www.sciencedirect.com/science/article/pii/S0892687512003184
dc.identifier.vancouvercitationGovender E, Bryan CG, Harrison STL. Quantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental system.  Minerals Engineering. 2013; http://hdl.handle.net/11427/21315.en_ZA
dc.languageengen_ZA
dc.publisherElsevieren_ZA
dc.publisher.institutionUniversity of Cape Town
dc.source Minerals Engineeringen_ZA
dc.source.urihttp://www.sciencedirect.com/science/journal/08926875
dc.subject.otherBioleaching
dc.subject.otherHydrometallurgy
dc.subject.otherSulphide ores
dc.subject.otherBacteria
dc.titleQuantification of growth and colonisation of low grade sulphidic ores by acidophilic chemoautotrophs using a novel experimental systemen_ZA
dc.typeJournal Articleen_ZA
uct.type.filetypeText
uct.type.filetypeImage
uct.type.publicationResearchen_ZA
uct.type.resourceArticleen_ZA
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