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Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage

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dc.contributor.author Masindi, Vhahangwele
dc.contributor.author Gitari, MW
dc.contributor.author Tutu, H
dc.contributor.author De Beer, Morris
dc.date.accessioned 2016-04-14T13:22:32Z
dc.date.available 2016-04-14T13:22:32Z
dc.date.issued 2015-12
dc.identifier.citation Masindi V., Gitari M.W., Tutu, H. and De Beer, M. 2015. Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage. Journal of Water Process Engineering, dx.doi.org/10.1016/j.jwpe.2015.11.007. en_US
dc.identifier.uri http://hdl.handle.net/10204/8487
dc.description Copyright: 2015 Elsevier. Due to copyright restrictions, the attached PDF file only contains the abstract of the full text item. For access to the full text item, please consult the publisher's website. The definitive version of the work is published in the Journal of Water Process Engineering, 2015, doi.org/10.1016/j.jwpe.2015.11.007 en_US
dc.description.abstract The primary aim of this study was to synthesize cryptocrystalline magnesite–bentonite clay composite by mechanochemical activation and evaluate its usability as low cost adsorbent for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage. The composite was synthesized at 1:1 weight to weight ratio. The capacity of the composite to neutralize acidity and remove toxic chemical species from synthetic and field AMD was evaluated at optimized conditions. Interaction of the composite with AMD led to an increase in pH (pH > 11) and lowering of metal concentrations. The removal of chemical species was optimum at 20 min of equilibration and 1 g of dosage. The composite removed ≈99% (Al3+, Fe3+, and Mn2+) and ≈90% (SO4 2−) from raw mine effluent. Adsorption kinetics fitted better to pseudo-second-order kinetic than pseudo-first-order kinetic hence confirming chemisorption. Adsorption data fitted better to Freundlich adsorption isotherm than Langmuir hence confirming multisite adsorption. Gibbs free energy model predicted that the reaction is spontaneous in nature for Al, Fe and sulphate except for Mn. Geochemical model indicated that Fe was removed as Fe(OH)3, goethite, and jarosite, Al as basaluminite, boehmite and jurbanite, Al(OH)3 and as gibbsite and diaspore. Al and Fe precipitated as iron (oxy)-hydroxides and aluminium (oxy)-hydroxides. Mn precipitated as rhodochrosite and manganite. Ca was removed as gypsum. Sulphate was removed as gypsum, and Fe, Al hydroxyl sulphate minerals. Mg was removed as brucite and dolomite. It was concluded that the composite has the potential to neutralize acidity and attenuate potentially toxic chemical species from acidic and metalliferous mine drainage. en_US
dc.language.iso en en_US
dc.publisher Elsevier en_US
dc.relation.ispartofseries Worklist;16207
dc.subject Acid mine drainage en_US
dc.subject Neutralization en_US
dc.subject Magnesite–bentonite clay composite en_US
dc.subject Inorganic contaminants en_US
dc.subject Adsorption modelling en_US
dc.title Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage en_US
dc.type Article en_US
dc.identifier.apacitation Masindi, V., Gitari, M., Tutu, H., & De Beer, M. (2015). Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage. http://hdl.handle.net/10204/8487 en_ZA
dc.identifier.chicagocitation Masindi, Vhahangwele, MW Gitari, H Tutu, and Morris De Beer "Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage." (2015) http://hdl.handle.net/10204/8487 en_ZA
dc.identifier.vancouvercitation Masindi V, Gitari M, Tutu H, De Beer M. Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage. 2015; http://hdl.handle.net/10204/8487. en_ZA
dc.identifier.ris TY - Article AU - Masindi, Vhahangwele AU - Gitari, MW AU - Tutu, H AU - De Beer, Morris AB - The primary aim of this study was to synthesize cryptocrystalline magnesite–bentonite clay composite by mechanochemical activation and evaluate its usability as low cost adsorbent for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage. The composite was synthesized at 1:1 weight to weight ratio. The capacity of the composite to neutralize acidity and remove toxic chemical species from synthetic and field AMD was evaluated at optimized conditions. Interaction of the composite with AMD led to an increase in pH (pH > 11) and lowering of metal concentrations. The removal of chemical species was optimum at 20 min of equilibration and 1 g of dosage. The composite removed ≈99% (Al3+, Fe3+, and Mn2+) and ≈90% (SO4 2−) from raw mine effluent. Adsorption kinetics fitted better to pseudo-second-order kinetic than pseudo-first-order kinetic hence confirming chemisorption. Adsorption data fitted better to Freundlich adsorption isotherm than Langmuir hence confirming multisite adsorption. Gibbs free energy model predicted that the reaction is spontaneous in nature for Al, Fe and sulphate except for Mn. Geochemical model indicated that Fe was removed as Fe(OH)3, goethite, and jarosite, Al as basaluminite, boehmite and jurbanite, Al(OH)3 and as gibbsite and diaspore. Al and Fe precipitated as iron (oxy)-hydroxides and aluminium (oxy)-hydroxides. Mn precipitated as rhodochrosite and manganite. Ca was removed as gypsum. Sulphate was removed as gypsum, and Fe, Al hydroxyl sulphate minerals. Mg was removed as brucite and dolomite. It was concluded that the composite has the potential to neutralize acidity and attenuate potentially toxic chemical species from acidic and metalliferous mine drainage. DA - 2015-12 DB - ResearchSpace DP - CSIR KW - Acid mine drainage KW - Neutralization KW - Magnesite–bentonite clay composite KW - Inorganic contaminants KW - Adsorption modelling LK - https://researchspace.csir.co.za PY - 2015 T1 - Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage TI - Synthesis of cryptocrystalline magnesite–bentonite clay composite and its application for neutralization and attenuation of inorganic contaminants in acidic and metalliferous mine drainage UR - http://hdl.handle.net/10204/8487 ER - en_ZA


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