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    Optimization of an Integrated SOFC-Fuel Processing System for Aircraft Propulsion

    Source: Journal of Fuel Cell Science and Technology:;2012:;volume( 009 ):;issue: 004::page 41006
    Author:
    Thomas E. Brinson
    ,
    Juan C. Ordonez
    ,
    Cesar A. Luongo
    DOI: 10.1115/1.4005587
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: As fuel cells continue to improve in performance and power densities levels rise, potential applications ensue. System-level performance modeling tools are needed to further the investigation of future applications. One such application is small-scale aircraft propulsion. Both piloted and unmanned fuel cell aircrafts have been successfully demonstrated suggesting the near-term viability of revolutionizing small-scale aviation. Nearly all of the flight demonstrations and modeling efforts are conducted with low temperature fuel cells; however, the solid oxide fuel cell (SOFC) should not be overlooked. Attributing to their durability and popularity in stationary applications, which require continuous operation, SOFCs are attractive options for long endurance flights. This study presents the optimization of an integrated solid oxide fuel cell-fuel processing system model for performance evaluation in aircraft propulsion. System parameters corresponding to maximum steady state thermal efficiencies for various flight phase power levels were obtained through implementation of the particle swarm optimization (PSO) algorithm. Optimal values for fuel utilization, air stoichiometric ratio, air bypass ratio, and burner ratio, a four-dimensional optimization problem, were obtained while constraining the SOFC operating temperature to 650–1000 °C. The PSO swarm size was set to 35 particles, and the number of iterations performed for each case flight power level was set at 40. Results indicate the maximum thermal efficiency of the integrated fuel cell-fuel processing system remains in the range of 44–46% throughout descend, loitering, and cruise conditions. This paper discusses a system-level model of an integrated fuel cell-fuel processing system, and presents a methodology for system optimization through the particle swarm algorithm.
    keyword(s): Fuel cells , Optimization , Solid oxide fuel cells , Particle swarm optimization , Fuels , Algorithms AND Aircraft propulsion ,
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      Optimization of an Integrated SOFC-Fuel Processing System for Aircraft Propulsion

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    contributor authorThomas E. Brinson
    contributor authorJuan C. Ordonez
    contributor authorCesar A. Luongo
    date accessioned2017-05-09T00:51:37Z
    date available2017-05-09T00:51:37Z
    date copyrightAugust, 2012
    date issued2012
    identifier issn2381-6872
    identifier otherJFCSAU-28955#041006_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/149220
    description abstractAs fuel cells continue to improve in performance and power densities levels rise, potential applications ensue. System-level performance modeling tools are needed to further the investigation of future applications. One such application is small-scale aircraft propulsion. Both piloted and unmanned fuel cell aircrafts have been successfully demonstrated suggesting the near-term viability of revolutionizing small-scale aviation. Nearly all of the flight demonstrations and modeling efforts are conducted with low temperature fuel cells; however, the solid oxide fuel cell (SOFC) should not be overlooked. Attributing to their durability and popularity in stationary applications, which require continuous operation, SOFCs are attractive options for long endurance flights. This study presents the optimization of an integrated solid oxide fuel cell-fuel processing system model for performance evaluation in aircraft propulsion. System parameters corresponding to maximum steady state thermal efficiencies for various flight phase power levels were obtained through implementation of the particle swarm optimization (PSO) algorithm. Optimal values for fuel utilization, air stoichiometric ratio, air bypass ratio, and burner ratio, a four-dimensional optimization problem, were obtained while constraining the SOFC operating temperature to 650–1000 °C. The PSO swarm size was set to 35 particles, and the number of iterations performed for each case flight power level was set at 40. Results indicate the maximum thermal efficiency of the integrated fuel cell-fuel processing system remains in the range of 44–46% throughout descend, loitering, and cruise conditions. This paper discusses a system-level model of an integrated fuel cell-fuel processing system, and presents a methodology for system optimization through the particle swarm algorithm.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleOptimization of an Integrated SOFC-Fuel Processing System for Aircraft Propulsion
    typeJournal Paper
    journal volume9
    journal issue4
    journal titleJournal of Fuel Cell Science and Technology
    identifier doi10.1115/1.4005587
    journal fristpage41006
    identifier eissn2381-6910
    keywordsFuel cells
    keywordsOptimization
    keywordsSolid oxide fuel cells
    keywordsParticle swarm optimization
    keywordsFuels
    keywordsAlgorithms AND Aircraft propulsion
    treeJournal of Fuel Cell Science and Technology:;2012:;volume( 009 ):;issue: 004
    contenttypeFulltext
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