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Détail de l'auteur
Auteur Zhaohui Liu
Documents disponibles écrits par cet auteur
Affiner la rechercheMathematicalModeling of air – and oxy – coal confined swirling flames on two extended eddy - dissipation models / Jingzhang Liu in Industrial & engineering chemistry research, Vol. 51 N° 2 (Janvier 2012)
[article]
in Industrial & engineering chemistry research > Vol. 51 N° 2 (Janvier 2012) . - pp. 691-703
Titre : MathematicalModeling of air – and oxy – coal confined swirling flames on two extended eddy - dissipation models Type de document : texte imprimé Auteurs : Jingzhang Liu, Auteur ; Sheng Chen, Auteur ; Zhaohui Liu, Auteur Année de publication : 2012 Article en page(s) : pp. 691-703 Note générale : Chimie industrielle Langues : Anglais (eng) Mots-clés : Flame Vortex Coal Modeling Résumé : The mathematical modeling of air― and oxy―coal flames is a great challenge because of the complexity of the turbulence chemistry interactions. However, the different turbulence chemistry interaction models can give very different results. Therefore, an investigation of the effects of these interactions on air― and oay―coal flames is needed, especially with both improved kinetic mechanisms and modified physical parameters. This work presents a numerical investigation of the effects of the interaction models on the characteristics of air― and oxy―coal confined swirling flames. These interaction models are two extended eddy- dissipation models (EDMs), the finite-rate and eddy-dissipation (FRED) model and the eddy dissipation concept (EDC) model. First, two important factors were considered in the oxy―coal combustion simulations, namely, improved global reaction mechanisms and modified physical parameters. Second, with these improvements and modifications, numerical simulations of air― and oxy―coal flames were carried out. The results showed that the flames focus on the horizontal center and propagate forward with a swirling closure shape and that the flame shapes belong to an intensively accelerated flame type IL. Good predictions of the combustion efficiencies were obtained by these two combustion models. Superior predictions of both the exhausted flue gas mixture and the minor carbon monoxide concentration were obtained with the eddy dissipation-chemical equilibrium (EDC) model. However, both ignition delays and temperature fields were better predicted with the kinetic-controlled and mixed-is-burned (FRED) model. DEWEY : 660 ISSN : 0888-5885 En ligne : http://cat.inist.fr/?aModele=afficheN&cpsidt=25476401 [article] MathematicalModeling of air – and oxy – coal confined swirling flames on two extended eddy - dissipation models [texte imprimé] / Jingzhang Liu, Auteur ; Sheng Chen, Auteur ; Zhaohui Liu, Auteur . - 2012 . - pp. 691-703.
Chimie industrielle
Langues : Anglais (eng)
in Industrial & engineering chemistry research > Vol. 51 N° 2 (Janvier 2012) . - pp. 691-703
Mots-clés : Flame Vortex Coal Modeling Résumé : The mathematical modeling of air― and oxy―coal flames is a great challenge because of the complexity of the turbulence chemistry interactions. However, the different turbulence chemistry interaction models can give very different results. Therefore, an investigation of the effects of these interactions on air― and oay―coal flames is needed, especially with both improved kinetic mechanisms and modified physical parameters. This work presents a numerical investigation of the effects of the interaction models on the characteristics of air― and oxy―coal confined swirling flames. These interaction models are two extended eddy- dissipation models (EDMs), the finite-rate and eddy-dissipation (FRED) model and the eddy dissipation concept (EDC) model. First, two important factors were considered in the oxy―coal combustion simulations, namely, improved global reaction mechanisms and modified physical parameters. Second, with these improvements and modifications, numerical simulations of air― and oxy―coal flames were carried out. The results showed that the flames focus on the horizontal center and propagate forward with a swirling closure shape and that the flame shapes belong to an intensively accelerated flame type IL. Good predictions of the combustion efficiencies were obtained by these two combustion models. Superior predictions of both the exhausted flue gas mixture and the minor carbon monoxide concentration were obtained with the eddy dissipation-chemical equilibrium (EDC) model. However, both ignition delays and temperature fields were better predicted with the kinetic-controlled and mixed-is-burned (FRED) model. DEWEY : 660 ISSN : 0888-5885 En ligne : http://cat.inist.fr/?aModele=afficheN&cpsidt=25476401