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Performance and size optimization of the turbine-less engine integrated solid oxide fuel cells on unmanned aerial vehicles with long endurance

Author

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  • Ji, Zhixing
  • Rokni, Marvin Mikael
  • Qin, Jiang
  • Zhang, Silong
  • Dong, Peng

Abstract

Fuel cells are applied to power sources on unmanned aerial vehicles with long endurance to save fuel and increase endurance. A turbine-less engine integrated with solid oxide fuel cells was proposed in our previous work. With the variation of fuel cell area, the specific fuel consumption and the engine weight both sharply changes, which severely affected the endurance of aircraft equipped with the engine. Therefore, the mathematical models considering the performance and weight were built to demonstrate the effect of the fuel cell size on the performance of the engine, and the key part was validated by experimental data. The main conclusions are as follows: the coupling effect between the equivalent ratio and the fuel cell stack number is strong. The endurance increment ratio for the aircraft compared with the endurance of the aircraft with turbojet engines first increases and then decreases with increasing fuel cell stack number or the equivalence ratio. In a big operating zone, the hybrid engine has a high endurance increment ratio. The maximum value is 0.152. Meanwhile, the fuel cell stack number is 3.7, and the equivalence ratios are respectively 0.356 and 0.137 in the reformer and combustor. The rated specific fuel consumption rate are 27.9 (g/s)/kN. In addition, the maximal thrust and thrust variation range of the engine increase by about 46% and 383–403%, compared with those of the turbojet engine.

Suggested Citation

  • Ji, Zhixing & Rokni, Marvin Mikael & Qin, Jiang & Zhang, Silong & Dong, Peng, 2021. "Performance and size optimization of the turbine-less engine integrated solid oxide fuel cells on unmanned aerial vehicles with long endurance," Applied Energy, Elsevier, vol. 299(C).
  • Handle: RePEc:eee:appene:v:299:y:2021:i:c:s0306261921007133
    DOI: 10.1016/j.apenergy.2021.117301
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    References listed on IDEAS

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    1. Azizi, Mohammad Ali & Brouwer, Jacob, 2018. "Progress in solid oxide fuel cell-gas turbine hybrid power systems: System design and analysis, transient operation, controls and optimization," Applied Energy, Elsevier, vol. 215(C), pages 237-289.
    2. Ji, Zhixing & Qin, Jiang & Cheng, Kunlin & Liu, He & Zhang, Silong & Dong, Peng, 2019. "Performance evaluation of a turbojet engine integrated with interstage turbine burner and solid oxide fuel cell," Energy, Elsevier, vol. 168(C), pages 702-711.
    3. Baroutaji, Ahmad & Wilberforce, Tabbi & Ramadan, Mohamad & Olabi, Abdul Ghani, 2019. "Comprehensive investigation on hydrogen and fuel cell technology in the aviation and aerospace sectors," Renewable and Sustainable Energy Reviews, Elsevier, vol. 106(C), pages 31-40.
    4. Ji, Zhixing & Qin, Jiang & Cheng, Kunlin & Guo, Fafu & Zhang, Silong & Dong, Peng, 2019. "Thermodynamics analysis of a turbojet engine integrated with a fuel cell and steam injection for high-speed flight," Energy, Elsevier, vol. 185(C), pages 190-201.
    5. Boukoberine, Mohamed Nadir & Zhou, Zhibin & Benbouzid, Mohamed, 2019. "A critical review on unmanned aerial vehicles power supply and energy management: Solutions, strategies, and prospects," Applied Energy, Elsevier, vol. 255(C).
    6. Rokni, M., 2017. "Addressing fuel recycling in solid oxide fuel cell systems fed by alternative fuels," Energy, Elsevier, vol. 137(C), pages 1013-1025.
    7. Ding, Xiaoyi & Lv, Xiaojing & Weng, Yiwu, 2019. "Coupling effect of operating parameters on performance of a biogas-fueled solid oxide fuel cell/gas turbine hybrid system," Applied Energy, Elsevier, vol. 254(C).
    8. Collins, Jeffrey M. & McLarty, Dustin, 2020. "All-electric commercial aviation with solid oxide fuel cell-gas turbine-battery hybrids," Applied Energy, Elsevier, vol. 265(C).
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    Cited by:

    1. Zhixing Ji & Fafu Guo & Tingting Zhu & Kunlin Cheng & Silong Zhang & Jiang Qin & Peng Dong, 2023. "Thermodynamic Performance Comparisons of Ideal Brayton Cycles Integrated with High Temperature Fuel Cells as Power Sources on Aircraft," Sustainability, MDPI, vol. 15(3), pages 1-16, February.
    2. Ji, Zhixing & Qin, Jiang & Cheng, Kunlin & Zhang, Silong & Wang, Zhanxue, 2023. "A comprehensive evaluation of ducted fan hybrid engines integrated with fuel cells for sustainable aviation," Renewable and Sustainable Energy Reviews, Elsevier, vol. 185(C).

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