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Integration of Flame-assisted Fuel Cells with a Gas Turbine running Jet-A as fuel

机译:将火焰辅助燃料电池与运行Jet-A的燃气轮机集成为燃料

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In recent vears, the aircraft industry is heading towards the concept of the More Electric Airplane (MEA). Previous research has investigated the possibility of integrating Dual Chamber Solid Oxide Fuel Cells (DC-SOFC) with the auxiliary power unit (APU) of the aircraft. This paper evaluates the merits of integrating the recently proposed Flame-assisted Fuel Cells (FFCs) with the APU gas turbine system. The syngas composition for fuel-rich combustion is studied using chemical equilibrium analysis of Jet-A/air at 8 Bar and 1073 K. The rest/Its show the potential for reforming Jet-A fuel to 22% Carbon Monoxide and 18% Hydrogen in the exhaust at an equivalence ratio of 2.4. The paper also reports how the efficiency of power generation changes when FFCs are placed in the combustor of a turbine in the APU. The maximum theoretical electrical efficiency of the FFC/combustor and the area and weight of the fuel cell required to generate the design power is calculated. The FFC offers a viable substitute for the DC-SOFC to be integrated with the APU.
机译:在最近的担忧中,飞机行业正在朝着“更多电动飞机”(MEA)的概念前进。先前的研究已经研究了将双室固体氧化物燃料电池(DC-SOFC)与飞机的辅助动力装置(APU)集成的可能性。本文评估了将最近提出的火焰辅助燃料电池(FFC)与APU燃气轮机系统集成的优点。通过在8 Bar和1073 K下对Jet-A /空气进行化学平衡分析,研究了用于富燃料燃烧的合成气成分。其余/它显示了将Jet-A燃料重整为22%一氧化碳和18%氢气的潜力。排气当量比为2.4。本文还报告了将FFC放置在APU中的涡轮机燃烧室中时发电效率如何变化。计算出FFC /燃烧器的最大理论电效率以及产生设计功率所需的燃料电池的面积和重量。 FFC为与APU集成的DC-SOFC提供了可行的替代方案。

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