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Conference Paper: Thermo-electrochemical modeling of the transport phenomena and electrochemical reactions in ammonia fed solid oxide fuel cells

TitleThermo-electrochemical modeling of the transport phenomena and electrochemical reactions in ammonia fed solid oxide fuel cells
Authors
KeywordsNumerical heat and mass transfer
Fuel cells
Transport phenomena
Porous media
Electrochemistry
Issue Date2010
PublisherNational University of Singapore.
Citation
The International Conference on Applied Energy (ICAE 2010), Singapore, 21-23 April 2010. In Proceedings of the International Conference on Applied Energy, 2010, p. 1526-1535 How to Cite?
AbstractA 2D model is developed to study the coupled transport and reaction in ammonia (NH3) fed solid oxide fuel cells (SOFCs) based on proton conducting electrolyte (SOFC-H) and oxygen ion conducting electrolyte (SOFC-O). The model integrates the previously developed electrochemical model with a computational fluid dynamics (CFD) model and is capable of predicting the heat and mass transfer as well as the electrochemical characteristics of NH3 fed SOFCs. Parametric simulations are conducted to study the distributions of local current density, gas composition, temperature contours and velocity profiles. The effect of electrode permeability on SOFC-H performance is examined. The performance of NH3 fed SOFC-H is compared with H2 fed SOFC-H and small difference between them is found. Comparison between SOFC-H and SOFC-O is made. The model is an extension of previously developed model and can serve as a useful tool for SOFC research.
Persistent Identifierhttp://hdl.handle.net/10722/133774

 

DC FieldValueLanguage
dc.contributor.authorNi, M-
dc.contributor.authorLeung, DYC-
dc.contributor.authorLeung, MKH-
dc.contributor.authorXuan, J-
dc.contributor.authorWang, H-
dc.date.accessioned2011-05-25T03:16:29Z-
dc.date.available2011-05-25T03:16:29Z-
dc.date.issued2010-
dc.identifier.citationThe International Conference on Applied Energy (ICAE 2010), Singapore, 21-23 April 2010. In Proceedings of the International Conference on Applied Energy, 2010, p. 1526-1535-
dc.identifier.urihttp://hdl.handle.net/10722/133774-
dc.description.abstractA 2D model is developed to study the coupled transport and reaction in ammonia (NH3) fed solid oxide fuel cells (SOFCs) based on proton conducting electrolyte (SOFC-H) and oxygen ion conducting electrolyte (SOFC-O). The model integrates the previously developed electrochemical model with a computational fluid dynamics (CFD) model and is capable of predicting the heat and mass transfer as well as the electrochemical characteristics of NH3 fed SOFCs. Parametric simulations are conducted to study the distributions of local current density, gas composition, temperature contours and velocity profiles. The effect of electrode permeability on SOFC-H performance is examined. The performance of NH3 fed SOFC-H is compared with H2 fed SOFC-H and small difference between them is found. Comparison between SOFC-H and SOFC-O is made. The model is an extension of previously developed model and can serve as a useful tool for SOFC research.-
dc.languageeng-
dc.publisherNational University of Singapore.-
dc.relation.ispartofProceedings of the International Conference on Applied Energy-
dc.subjectNumerical heat and mass transfer-
dc.subjectFuel cells-
dc.subjectTransport phenomena-
dc.subjectPorous media-
dc.subjectElectrochemistry-
dc.titleThermo-electrochemical modeling of the transport phenomena and electrochemical reactions in ammonia fed solid oxide fuel cellsen_US
dc.typeConference_Paperen_US
dc.identifier.emailNi, M: memni@graduate.hku.hk-
dc.identifier.emailLeung, DYC: ycleung@hku.hk-
dc.identifier.emailLeung, MKH: mkhleung@HKUCC.hku.hk-
dc.identifier.emailWang, H: wanghz@HKUSUA.hku.hk-
dc.description.naturelink_to_OA_fulltext-
dc.identifier.hkuros171139-
dc.identifier.spage1526-
dc.identifier.epage1535-
dc.description.otherThe International Conference on Applied Energy (ICAE 2010), Singapore, 21-23 April 2010. In Proceedings of the International Conference on Applied Energy, 2010, p. 1526-1535-

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