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    Dynamic Simulation of an Integrated Solid Oxide Fuel Cell System Including Current-Based Fuel Flow Control

    Source: Journal of Fuel Cell Science and Technology:;2006:;volume( 003 ):;issue: 002::page 144
    Author:
    Fabian Mueller
    ,
    Jacob Brouwer
    ,
    Faryar Jabbari
    ,
    Scott Samuelsen
    DOI: 10.1115/1.2174063
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A two-dimensional dynamic model was created for a Siemens Westinghouse type tubular solid oxide fuel cell (SOFC). This SOFC model was integrated with simulation modules for other system components (e.g., reformer, combustion chamber, and dissipater) to comprise a system model that can simulate an integrated 25kw SOFC system located at the University of California, Irvine. A comparison of steady-state model results to data suggests that the integrated model can well predict actual system power performance to within 3%, and temperature to within 5%. In addition, the model predictions well characterize observed voltage and temperature transients that are representative of tubular SOFC system performance. The characteristic voltage transient due to changes in SOFC hydrogen concentration has a time scale that is shown to be on the order of seconds while the characteristic temperature transient is on the order of hours. Voltage transients due to hydrogen concentration change are investigated in detail. Particularly, the results reinforce the importance of maintaining fuel utilization during transient operation. The model is shown to be a useful tool for investigating the impacts of component response characteristics on overall system dynamic performance. Current-based flow control (CBFC), a control strategy of changing the fuel flow rate in proportion to the fuel cell current is tested and shown to be highly effective. The results further demonstrate the impact of fuel flow delay that may result from slow dynamic responses of control valves, and that such flow delays impose major limitations on the system transient response capability.
    keyword(s): Flow (Dynamics) , Temperature , Fuel cells , Solid oxide fuel cells , Equations , Fuels , Simulation , Hydrogen , Flow control , Heat transfer , Combustion chambers , Stress AND Electric potential ,
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      Dynamic Simulation of an Integrated Solid Oxide Fuel Cell System Including Current-Based Fuel Flow Control

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    http://yetl.yabesh.ir/yetl1/handle/yetl/134071
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    contributor authorFabian Mueller
    contributor authorJacob Brouwer
    contributor authorFaryar Jabbari
    contributor authorScott Samuelsen
    date accessioned2017-05-09T00:20:33Z
    date available2017-05-09T00:20:33Z
    date copyrightMay, 2006
    date issued2006
    identifier issn2381-6872
    identifier otherJFCSAU-28925#144_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/134071
    description abstractA two-dimensional dynamic model was created for a Siemens Westinghouse type tubular solid oxide fuel cell (SOFC). This SOFC model was integrated with simulation modules for other system components (e.g., reformer, combustion chamber, and dissipater) to comprise a system model that can simulate an integrated 25kw SOFC system located at the University of California, Irvine. A comparison of steady-state model results to data suggests that the integrated model can well predict actual system power performance to within 3%, and temperature to within 5%. In addition, the model predictions well characterize observed voltage and temperature transients that are representative of tubular SOFC system performance. The characteristic voltage transient due to changes in SOFC hydrogen concentration has a time scale that is shown to be on the order of seconds while the characteristic temperature transient is on the order of hours. Voltage transients due to hydrogen concentration change are investigated in detail. Particularly, the results reinforce the importance of maintaining fuel utilization during transient operation. The model is shown to be a useful tool for investigating the impacts of component response characteristics on overall system dynamic performance. Current-based flow control (CBFC), a control strategy of changing the fuel flow rate in proportion to the fuel cell current is tested and shown to be highly effective. The results further demonstrate the impact of fuel flow delay that may result from slow dynamic responses of control valves, and that such flow delays impose major limitations on the system transient response capability.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleDynamic Simulation of an Integrated Solid Oxide Fuel Cell System Including Current-Based Fuel Flow Control
    typeJournal Paper
    journal volume3
    journal issue2
    journal titleJournal of Fuel Cell Science and Technology
    identifier doi10.1115/1.2174063
    journal fristpage144
    journal lastpage154
    identifier eissn2381-6910
    keywordsFlow (Dynamics)
    keywordsTemperature
    keywordsFuel cells
    keywordsSolid oxide fuel cells
    keywordsEquations
    keywordsFuels
    keywordsSimulation
    keywordsHydrogen
    keywordsFlow control
    keywordsHeat transfer
    keywordsCombustion chambers
    keywordsStress AND Electric potential
    treeJournal of Fuel Cell Science and Technology:;2006:;volume( 003 ):;issue: 002
    contenttypeFulltext
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    DSpace software copyright © 2002-2015  DuraSpace
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