固体氧化物燃料电池
辅助动力装置
航空航天工程
核工程
电力系统
航空航天
环境科学
汽车工程
材料科学
功率(物理)
机械工程
电气工程
工程类
物理
阳极
电压
量子力学
电极
作者
Ananda Himansu,Joshua E. Freeh,Christopher J. Steffen,Robert T. Tornabene,Xiao-Yen J. Wang
标识
DOI:10.1115/fuelcell2006-97095
摘要
A system level analysis, inclusive of mass, is carried out for a cryogenic hydrogen fueled hybrid solid oxide fuel cell and bottoming gas turbine (SOFC/GT) power system. The system is designed to provide primary or secondary electrical power for an unmanned aerial vehicle (UAV) over a high altitude, long endurance mission. The net power level and altitude are parametrically varied to examine their effect on total system mass. Some of the more important technology parameters, including turbomachinery efficiencies and the SOFC area specific resistance, are also studied for their effect on total system mass. Finally, two different solid oxide cell designs are compared to show the importance of the individual solid oxide cell design on the overall system. We show that for long mission durations of 10 days or more, the fuel mass savings resulting from the high efficiency of an SOFC/GT system more than offset the larger powerplant mass resulting from the low specific power of the SOFC/GT system. These missions therefore favor high efficiency, low power density systems, characteristics typical of fuel cell systems in general.
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