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Effect of Operating Parameters on a Hybrid Propulsion System with High Efficiency Fueled by Kerosene for High Altitude Long Endurance Unmanned Aerial Vehicles

机译:高效应高效率高海水长耐力无人航空车辆杂交推进系统对混合推进系统的影响

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The traditional engine propulsion systems have poor performance on the high altitude long endurance unmanned aerial vehicles (HALE UAVs) due to the low thermal efficiency. Thanks to the high thermal efficiency and fine off-design performance, SOFC (solid oxide fuel cell) gas turbine hybrid systems can provide a remarkable solution for the propulsion systems of HALE UAVs. The scheme of a SOFC gas turbine hybrid propulsion system fueled by kerosene for HALE UAVs is proposed. The goal of this paper is to demonstrate the effect of operation parameters on the hybrid propulsion systems, which mainly include anode separation ratio, excess air factor, SOFC current density, cathode separation ratio and fuel reforming temperature. We build the lumped mathematical models of the hybrid propulsion system and performance evaluation is done. Several conclusions can be drawn as follows: The efficiency of the hybrid propulsion systems can be significantly increased up to 64%. The efficiency can be optimized as anode separation ratio increases. Cathode separation ratio has little influence on the efficiency. The efficiency increases as the excess air factor increases. The increase of the current density or fuel reforming temperature can lead to the decrease of efficiency.
机译:由于低热效率,传统发动机推进系统对高海拔长度耐久性的空中航空车(HALE UAV)的性能差。由于高热效率和精细的非设计性能,SOFC(固体氧化物燃料电池)燃气轮机混合系统可以为HALE UAV的推进系统提供显着的解决方案。提出了由煤油用于HALE UAV的SOFC燃气涡轮机杂交推进系统的方案。本文的目的是展示操作参数对混合推进系统的影响,其主要包括阳极分离比,过量空气因子,SOFC电流密度,阴极分离率和燃料重整温度。我们建立混合动力推进系统的总数数学模型,并完成性能评估。可以如下绘制若干结论:混合动力推进系统的效率可显着增加至64%。随着阳极分离率的增加,效率可以优化。阴极分离比对效率几乎没有影响。随着超出空气因子的增加,效率增加。电流密度或燃料重整温度的增加可能导致效率的降低。

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