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System integration and proof-of-concept test results of SOFC–engine hybrid power generation system

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  • Kim, Young Sang
  • Lee, Young Duk
  • Ahn, Kook Young

Abstract

A novel concept of solid oxide fuel cell (SOFC)-based hybrid power generation—an SOFC–engine hybrid—is introduced, and proof-of-concept test results for a 5-kW-class system are presented. The SOFC–engine hybrid system is a combination of an SOFC and internal combustion engine, consisting of an SOFC stack, a reformer, an air blower, a fuel supply system, a water pump, an air preheating exchanger, a steam generator, and an internal combustion engine. To prove the feasibility of the proposed hybrid system concept, a 5-kW-class small-scale demonstration system was integrated with the proposed system, and tests were performed under various experimental conditions with pure hydrogen fuel and reformed methane gas. In the hydrogen-based test, the SOFC and engine generated 4.4 kW and 731 W, respectively, at 70% fuel utilization. This indicates that the engine improved the efficiency by 7.9% compared with fuel-cell-only operation (47.8%). In the reformed gas test, the demonstration was conducted for more than 200 h. At a lower fuel utilization of 50.6%, the SOFC and engine generated 3.3 kW and 1168 W, respectively; the engine accounted for 26.0% of the total net power production. As the fuel utilization increased, the power share of the engine decreased; the engine accounted for 17.3%, 13.1%, and 7.6% of the total net power at fuel utilizations of 61.2%, 65.4%, and 70.1%, respectively. Based on the results, it can be concluded that at 70.1% fuel utilization, the efficiency improved by 5.3% because of the additional power from the engine. Through a series of tests, it was observed that at a fuel utilization of more than 65%, the total power production and sum of the SOFC power and engine power maintained similar values because the engine compensated for the power decrease in the SOFC stack.

Suggested Citation

  • Kim, Young Sang & Lee, Young Duk & Ahn, Kook Young, 2020. "System integration and proof-of-concept test results of SOFC–engine hybrid power generation system," Applied Energy, Elsevier, vol. 277(C).
  • Handle: RePEc:eee:appene:v:277:y:2020:i:c:s0306261920310540
    DOI: 10.1016/j.apenergy.2020.115542
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    References listed on IDEAS

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    Cited by:

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    4. Koo, Taehyung & Kim, Young Sang & Lee, Young Duk & Yu, Sangseok & Lee, Dong Keun & Ahn, Kook Young, 2021. "Exergetic evaluation of operation results of 5-kW-class SOFC-HCCI engine hybrid power generation system," Applied Energy, Elsevier, vol. 295(C).
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    9. Kasaeian, Alibakhsh & Hadavi, Hamed & Amirhaeri, Yasaman & Pourfayaz, Fathollah, 2022. "Thermodynamic analysis of a wood chips-based cycle integrated with solid oxide fuel cell," Renewable Energy, Elsevier, vol. 195(C), pages 1174-1193.

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