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    Modeling Radiation Heat Transfer With Participating Media in Solid Oxide Fuel Cells

    Source: Journal of Fuel Cell Science and Technology:;2006:;volume( 003 ):;issue: 001::page 62
    Author:
    J. D. VanderSteen
    ,
    J. G. Pharoah
    DOI: 10.1115/1.2134738
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: Solid oxide fuel cell (SOFC) technology has been shown to be viable, but its profitability has not yet been seen. To achieve a high net efficiency at a low net cost, a detailed understanding of the transport processes both inside and outside of the SOFC stack is required. Of particular significance is an accurate determination of the temperature distribution because material properties, chemical kinetics, and transport properties depend heavily on the temperature. Effective utilization of the heat can lead to a substantial increase in overall system efficiency and decrease in operating cost. Despite the extreme importance in accurately predicting temperature, the SOFC modeling community appears to be uncertain about the importance of incorporating radiation into their models. Although some models have included it, the majority of models ignore radiative heat transfer. SOFCs operate at temperatures around or above 1200 K, where radiation effects can be significant. In order to correctly predict the radiation heat transfer, participating gases must also be included. Water vapor and carbon dioxide can absorb, emit, and scatter radiation, and are present at the anode in high concentrations. This paper presents a simple thermal transport model for analyzing heat transfer and improving thermal management within planar SOFCs. The model was implemented using a commercial computational fluid dynamic code and includes conduction, convection, and radiation in a participating media. It is clear from this study that radiation must be considered when modeling solid oxide fuel cells. The effect of participating media radiation was shown to be minimal in this geometry, but it is likely to be more important in tubular geometries.
    keyword(s): Temperature , Radiation (Physics) , Solid oxide fuel cells , Heat transfer , Modeling AND Geometry ,
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      Modeling Radiation Heat Transfer With Participating Media in Solid Oxide Fuel Cells

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    contributor authorJ. D. VanderSteen
    contributor authorJ. G. Pharoah
    date accessioned2017-05-09T00:20:37Z
    date available2017-05-09T00:20:37Z
    date copyrightFebruary, 2006
    date issued2006
    identifier issn2381-6872
    identifier otherJFCSAU-28924#62_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/134092
    description abstractSolid oxide fuel cell (SOFC) technology has been shown to be viable, but its profitability has not yet been seen. To achieve a high net efficiency at a low net cost, a detailed understanding of the transport processes both inside and outside of the SOFC stack is required. Of particular significance is an accurate determination of the temperature distribution because material properties, chemical kinetics, and transport properties depend heavily on the temperature. Effective utilization of the heat can lead to a substantial increase in overall system efficiency and decrease in operating cost. Despite the extreme importance in accurately predicting temperature, the SOFC modeling community appears to be uncertain about the importance of incorporating radiation into their models. Although some models have included it, the majority of models ignore radiative heat transfer. SOFCs operate at temperatures around or above 1200 K, where radiation effects can be significant. In order to correctly predict the radiation heat transfer, participating gases must also be included. Water vapor and carbon dioxide can absorb, emit, and scatter radiation, and are present at the anode in high concentrations. This paper presents a simple thermal transport model for analyzing heat transfer and improving thermal management within planar SOFCs. The model was implemented using a commercial computational fluid dynamic code and includes conduction, convection, and radiation in a participating media. It is clear from this study that radiation must be considered when modeling solid oxide fuel cells. The effect of participating media radiation was shown to be minimal in this geometry, but it is likely to be more important in tubular geometries.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleModeling Radiation Heat Transfer With Participating Media in Solid Oxide Fuel Cells
    typeJournal Paper
    journal volume3
    journal issue1
    journal titleJournal of Fuel Cell Science and Technology
    identifier doi10.1115/1.2134738
    journal fristpage62
    journal lastpage67
    identifier eissn2381-6910
    keywordsTemperature
    keywordsRadiation (Physics)
    keywordsSolid oxide fuel cells
    keywordsHeat transfer
    keywordsModeling AND Geometry
    treeJournal of Fuel Cell Science and Technology:;2006:;volume( 003 ):;issue: 001
    contenttypeFulltext
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