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Poly-generating closed cathode fuel cell with carbon capture

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  • McLarty, Dustin
  • Brouwer, Jack

Abstract

High temperature fuel cells are a promising technology for ultra-low emission power generation. This paper presents a novel poly-generating system capable of greater than 80% (LHV CH4) co-production efficiency with carbon capture and liquefaction. The proposed system synergistically integrates an air separation unit providing pure oxygen to a fuel cell and liquid nitrogen to a hydrogen separation unit. Both solid oxide and molten carbonate fuel cells may be capable of this integration with additional refrigeration load needed for the molten carbonate system to condense and recirculate carbon dioxide into the cathode stream. Stack temperature control utilizes the endothermic cooling effect of internal fuel reforming. The primary characteristic of the system, converting fuel cell waste heat to produce a secondary fuel (e.g. hydrogen), portends the ultra-high efficiency while enabling additional system design and integration synergies that may reduce complexity, cost, and load following constraints. A unique controller is developed for power and thermal management of a fuel-cooled fuel cell with anode recirculation. A brief economic analysis identifies the potential revenue from each of the four product streams, electricity, hydrogen, heat, and liquid CO2, and presents a conservative, yet favorable assessment of system costs relative to market electricity and hydrogen fuel prices.

Suggested Citation

  • McLarty, Dustin & Brouwer, Jack, 2014. "Poly-generating closed cathode fuel cell with carbon capture," Applied Energy, Elsevier, vol. 131(C), pages 108-116.
  • Handle: RePEc:eee:appene:v:131:y:2014:i:c:p:108-116
    DOI: 10.1016/j.apenergy.2014.06.011
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    References listed on IDEAS

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    1. Campanari, Stefano & Manzolini, Giampaolo & Chiesa, Paolo, 2013. "Using MCFC for high efficiency CO2 capture from natural gas combined cycles: Comparison of internal and external reforming," Applied Energy, Elsevier, vol. 112(C), pages 772-783.
    2. Brian C. H. Steele & Angelika Heinzel, 2001. "Materials for fuel-cell technologies," Nature, Nature, vol. 414(6861), pages 345-352, November.
    3. Li, Mu & Rao, Ashok D. & Scott Samuelsen, G., 2012. "Performance and costs of advanced sustainable central power plants with CCS and H2 co-production," Applied Energy, Elsevier, vol. 91(1), pages 43-50.
    4. Fu, Chao & Gundersen, Truls, 2013. "Recuperative vapor recompression heat pumps in cryogenic air separation processes," Energy, Elsevier, vol. 59(C), pages 708-718.
    5. Park, Sung Ku & Kim, Tong Seop & Sohn, Jeong L. & Lee, Young Duk, 2011. "An integrated power generation system combining solid oxide fuel cell and oxy-fuel combustion for high performance and CO2 capture," Applied Energy, Elsevier, vol. 88(4), pages 1187-1196, April.
    6. Fu, Chao & Gundersen, Truls, 2012. "Using exergy analysis to reduce power consumption in air separation units for oxy-combustion processes," Energy, Elsevier, vol. 44(1), pages 60-68.
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    Cited by:

    1. Ahn, Ji Ho & Seo, Min Hyung & Kim, Tong Seop, 2021. "Efficiency maximization of a quadruple power generation system with zero carbon emission," Energy, Elsevier, vol. 226(C).
    2. Ahn, Ji Ho & Kim, Tong Seop, 2020. "Effect of oxygen supply method on the performance of a micro gas turbine-based triple combined cycle with oxy-combustion carbon capture," Energy, Elsevier, vol. 211(C).
    3. Hu, Boxun & Keane, Michael & Patil, Kailash & Mahapatra, Manoj K. & Pasaogullari, Ugur & Singh, Prabhakar, 2014. "Direct methanol utilization in intermediate temperature liquid-tin anode solid oxide fuel cells," Applied Energy, Elsevier, vol. 134(C), pages 342-348.

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