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Détail de l'auteur
Auteur Kshitij Prakash
Documents disponibles écrits par cet auteur
Affiner la rechercheAnalysis of membrane and adsorbent processes for warm syngas cleanup in integrated gasification combined - Cycle power with CO2 capture and sequestration / David J. Couling in Industrial & engineering chemistry research, Vol. 50 N° 19 (Octobre 2011)
[article]
in Industrial & engineering chemistry research > Vol. 50 N° 19 (Octobre 2011) . - pp. 11313-11336
Titre : Analysis of membrane and adsorbent processes for warm syngas cleanup in integrated gasification combined - Cycle power with CO2 capture and sequestration Type de document : texte imprimé Auteurs : David J. Couling, Auteur ; Kshitij Prakash, Auteur ; William H. Green, Auteur Année de publication : 2011 Article en page(s) : pp. 11313-11336 Note générale : Chimie industrielle Langues : Anglais (eng) Mots-clés : Carbon dioxide Gasification Synthesis gas Résumé : Integrated gasification combined cycle (IGCC) with CO2 capture and sequestration (CCS) offers a promising approach for cleanly using abundant coal reserves of the world to generate electricity. The present state-of-the-art synthesis gas (syngas) cleanup technologies in IGCC involve cooling the syngas from the gasifier to room temperature or lower for removing sulfur, carbon dioxide, and other pollutants, leading to a large efficiency loss. Here we assess the suitability of various alternative syngas cleanup technologies for IGCC with CCS through computational simulations. We model multicomponent gas separation for CO2 capture in IGCC using polymeric membranes and H2 separation from the syngas using both Pd-alloy based composite metallic membranes and polymeric membranes. In addition, we develop a pressure swing adsorption model to estimate the energy efficiency of regenerable sorbent beds for CO2 capture. We use our models with Aspen Plus simulations to identify promising design and operating conditions for membrane and adsorption processes in an IGCC plant. On the basis of our analysis, the benefits of warm gas cleanup are not as great as previously reported in the literature, and only CO2 separations performed using H2-permeable Pd-alloy membranes and CO2 adsorbents produce overall higher heating value (HHV) efficiencies higher than that of Selexol. In addition, many of the technologies surveyed require a narrow operating range of process parameters in order to be viable alternatives. We identify desired material properties of membranes and thermodynamic properties of sorbents that are needed to make these technologies successful, providing direction for ongoing experimental efforts to develop these materials. DEWEY : 660 ISSN : 0888-5885 En ligne : http://cat.inist.fr/?aModele=afficheN&cpsidt=24573329 [article] Analysis of membrane and adsorbent processes for warm syngas cleanup in integrated gasification combined - Cycle power with CO2 capture and sequestration [texte imprimé] / David J. Couling, Auteur ; Kshitij Prakash, Auteur ; William H. Green, Auteur . - 2011 . - pp. 11313-11336.
Chimie industrielle
Langues : Anglais (eng)
in Industrial & engineering chemistry research > Vol. 50 N° 19 (Octobre 2011) . - pp. 11313-11336
Mots-clés : Carbon dioxide Gasification Synthesis gas Résumé : Integrated gasification combined cycle (IGCC) with CO2 capture and sequestration (CCS) offers a promising approach for cleanly using abundant coal reserves of the world to generate electricity. The present state-of-the-art synthesis gas (syngas) cleanup technologies in IGCC involve cooling the syngas from the gasifier to room temperature or lower for removing sulfur, carbon dioxide, and other pollutants, leading to a large efficiency loss. Here we assess the suitability of various alternative syngas cleanup technologies for IGCC with CCS through computational simulations. We model multicomponent gas separation for CO2 capture in IGCC using polymeric membranes and H2 separation from the syngas using both Pd-alloy based composite metallic membranes and polymeric membranes. In addition, we develop a pressure swing adsorption model to estimate the energy efficiency of regenerable sorbent beds for CO2 capture. We use our models with Aspen Plus simulations to identify promising design and operating conditions for membrane and adsorption processes in an IGCC plant. On the basis of our analysis, the benefits of warm gas cleanup are not as great as previously reported in the literature, and only CO2 separations performed using H2-permeable Pd-alloy membranes and CO2 adsorbents produce overall higher heating value (HHV) efficiencies higher than that of Selexol. In addition, many of the technologies surveyed require a narrow operating range of process parameters in order to be viable alternatives. We identify desired material properties of membranes and thermodynamic properties of sorbents that are needed to make these technologies successful, providing direction for ongoing experimental efforts to develop these materials. DEWEY : 660 ISSN : 0888-5885 En ligne : http://cat.inist.fr/?aModele=afficheN&cpsidt=24573329 Correction to “analysis of membrane and adsorbent processes for warm syngas cleanup in integrated gasification combined - cycle power with CO2 capture and sequestration” / David J. Couling in Industrial & engineering chemistry research, Vol. 51 N° 35 (Septembre 2012)
[article]
in Industrial & engineering chemistry research > Vol. 51 N° 35 (Septembre 2012) . - pp. 11592–11592
Titre : Correction to “analysis of membrane and adsorbent processes for warm syngas cleanup in integrated gasification combined - cycle power with CO2 capture and sequestration” Type de document : texte imprimé Auteurs : David J. Couling, Auteur ; Kshitij Prakash, Auteur ; William H. Green, Auteur Année de publication : 2012 Article en page(s) : pp. 11592–11592 Note générale : Industrial chemistry Langues : Anglais (eng) Mots-clés : Correction Analysis membrane ISSN : 0888-5885 En ligne : http://pubs.acs.org/doi/abs/10.1021/ie302162y [article] Correction to “analysis of membrane and adsorbent processes for warm syngas cleanup in integrated gasification combined - cycle power with CO2 capture and sequestration” [texte imprimé] / David J. Couling, Auteur ; Kshitij Prakash, Auteur ; William H. Green, Auteur . - 2012 . - pp. 11592–11592.
Industrial chemistry
Langues : Anglais (eng)
in Industrial & engineering chemistry research > Vol. 51 N° 35 (Septembre 2012) . - pp. 11592–11592
Mots-clés : Correction Analysis membrane ISSN : 0888-5885 En ligne : http://pubs.acs.org/doi/abs/10.1021/ie302162y