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Détail de l'auteur
Auteur Gnouyaro P. Assima
Documents disponibles écrits par cet auteur
Affiner la rechercheCO2 Sequestration in chrysotile mining residues — implication of watering and passivation under environmental conditions / Gnouyaro P. Assima in Industrial & engineering chemistry research, Vol. 51 N° 26 (Juillet 2012)
[article]
in Industrial & engineering chemistry research > Vol. 51 N° 26 (Juillet 2012) . - pp 8726–8734
Titre : CO2 Sequestration in chrysotile mining residues — implication of watering and passivation under environmental conditions Type de document : texte imprimé Auteurs : Gnouyaro P. Assima, Auteur ; Faïçal Larachi, Auteur ; Georges Beaudoin, Auteur Année de publication : 2012 Article en page(s) : pp 8726–8734 Note générale : Industrial chemistry Langues : Anglais (eng) Mots-clés : Chrysotile Mining Residues Résumé : Factors affecting carbon dioxide fixation in chrysotile mining residues (CMR) under environmental conditions were studied by reproducing mineral dissolution and carbonation in laboratory columns packed with CMR particles. Carbonation is very sensitive to water saturation and watering frequency of the CMR porous media. CO2 uptake by dry residues subjected to dry CO2 flow for several days at ambient temperature was below 0.02%. However, an increase by a factor of 20 in CO2 uptake was achieved by periodic addition of small amounts of water with respect to a moistened CO2 stream over dry CMR samples. The highest MgCO3 conversion resulted in nearly 22 mg of CO2 captured per gram of residue, revealing that up to 93% of Mg remained noncarbonated because of surface obstructing processes. Magnesium leaching from CMR was hindered by two concomitant passivation phenomena limiting the residue’s CO2 storage capacity. A unique cyclic voltammetry technique using oxic and anoxic aqueous solutions contacted with CMR fixed beds was implemented to assess the relative importance from CMR-borne iron electrochemical passivation and silica-deposit nonelectrochemical passivation. Passivation around the dissolving CMR particles by iron hydroxide precipitation was found to develop very rapidly in comparison to silica gel polymerization. ISSN : 0888-5885 En ligne : http://pubs.acs.org/doi/abs/10.1021/ie202693q [article] CO2 Sequestration in chrysotile mining residues — implication of watering and passivation under environmental conditions [texte imprimé] / Gnouyaro P. Assima, Auteur ; Faïçal Larachi, Auteur ; Georges Beaudoin, Auteur . - 2012 . - pp 8726–8734.
Industrial chemistry
Langues : Anglais (eng)
in Industrial & engineering chemistry research > Vol. 51 N° 26 (Juillet 2012) . - pp 8726–8734
Mots-clés : Chrysotile Mining Residues Résumé : Factors affecting carbon dioxide fixation in chrysotile mining residues (CMR) under environmental conditions were studied by reproducing mineral dissolution and carbonation in laboratory columns packed with CMR particles. Carbonation is very sensitive to water saturation and watering frequency of the CMR porous media. CO2 uptake by dry residues subjected to dry CO2 flow for several days at ambient temperature was below 0.02%. However, an increase by a factor of 20 in CO2 uptake was achieved by periodic addition of small amounts of water with respect to a moistened CO2 stream over dry CMR samples. The highest MgCO3 conversion resulted in nearly 22 mg of CO2 captured per gram of residue, revealing that up to 93% of Mg remained noncarbonated because of surface obstructing processes. Magnesium leaching from CMR was hindered by two concomitant passivation phenomena limiting the residue’s CO2 storage capacity. A unique cyclic voltammetry technique using oxic and anoxic aqueous solutions contacted with CMR fixed beds was implemented to assess the relative importance from CMR-borne iron electrochemical passivation and silica-deposit nonelectrochemical passivation. Passivation around the dissolving CMR particles by iron hydroxide precipitation was found to develop very rapidly in comparison to silica gel polymerization. ISSN : 0888-5885 En ligne : http://pubs.acs.org/doi/abs/10.1021/ie202693q