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Détail de l'auteur
Auteur Manohar Kumar Bolla
Documents disponibles écrits par cet auteur
Affiner la rechercheMechanistic features of ultrasound - assisted oxidative desulfurization of liquid fuels / Manohar Kumar Bolla in Industrial & engineering chemistry research, Vol. 51 N° 29 (Juillet 2012)
[article]
in Industrial & engineering chemistry research > Vol. 51 N° 29 (Juillet 2012) . - pp. 9705–9712
Titre : Mechanistic features of ultrasound - assisted oxidative desulfurization of liquid fuels Type de document : texte imprimé Auteurs : Manohar Kumar Bolla, Auteur ; Hanif A. Choudhury, Auteur ; Vijayanand S. Moholkar, Auteur Année de publication : 2012 Article en page(s) : pp. 9705–9712 Note générale : Industrial chemistry Langues : Anglais (eng) Mots-clés : Ultrasound Oxidative Liquid fuels Résumé : A new technology for the removal of sulfur compounds from liquid fuels is oxidative desulfurization. Although several studies have reported the enhancement effect of ultrasound irradiation on oxidative desulfurization, the exact mechanism underlying this enhancement is not known yet. In this study, we have addressed this issue with dual approach of coupling experiments with mathematical model for cavitation. Results of this study have given interesting revelation of interaction between mechanism of ultrasound, cavitation, and oxidation system. Isolation of cavitation phenomenon helps to increase the extent of oxidation. This effect is attributed to formation of hydrogen and carbon monoxide during transient collapse of cavitation bubbles due to thermal dissociation of hexane vapor entrapped in the bubble, which hamper the action of O species generated from the oxidation system. Transient cavitation itself does not give rise to radical formation, because of rather low temperature peaks reached during collapse. Therefore, cavitation does not enhance the oxidation process, but in fact, has an adverse effect on it. Current study has established that the beneficial effect of ultrasound on oxidative desulfurization system is merely of a physical nature (i.e., emulsification due to intense micromixing), with no involvement of a sonochemical effect. ISSN : 0888-5885 En ligne : http://pubs.acs.org/doi/abs/10.1021/ie300807a [article] Mechanistic features of ultrasound - assisted oxidative desulfurization of liquid fuels [texte imprimé] / Manohar Kumar Bolla, Auteur ; Hanif A. Choudhury, Auteur ; Vijayanand S. Moholkar, Auteur . - 2012 . - pp. 9705–9712.
Industrial chemistry
Langues : Anglais (eng)
in Industrial & engineering chemistry research > Vol. 51 N° 29 (Juillet 2012) . - pp. 9705–9712
Mots-clés : Ultrasound Oxidative Liquid fuels Résumé : A new technology for the removal of sulfur compounds from liquid fuels is oxidative desulfurization. Although several studies have reported the enhancement effect of ultrasound irradiation on oxidative desulfurization, the exact mechanism underlying this enhancement is not known yet. In this study, we have addressed this issue with dual approach of coupling experiments with mathematical model for cavitation. Results of this study have given interesting revelation of interaction between mechanism of ultrasound, cavitation, and oxidation system. Isolation of cavitation phenomenon helps to increase the extent of oxidation. This effect is attributed to formation of hydrogen and carbon monoxide during transient collapse of cavitation bubbles due to thermal dissociation of hexane vapor entrapped in the bubble, which hamper the action of O species generated from the oxidation system. Transient cavitation itself does not give rise to radical formation, because of rather low temperature peaks reached during collapse. Therefore, cavitation does not enhance the oxidation process, but in fact, has an adverse effect on it. Current study has established that the beneficial effect of ultrasound on oxidative desulfurization system is merely of a physical nature (i.e., emulsification due to intense micromixing), with no involvement of a sonochemical effect. ISSN : 0888-5885 En ligne : http://pubs.acs.org/doi/abs/10.1021/ie300807a