A Thermodynamic Analysis of Electricity and Hydrogen Co-Production Using a Solid Oxide Fuel Cell

Author:

Leal Elisângela M.1,Brouwer Jack2

Affiliation:

1. Combustion and Propulsion Laboratory, National Institute for Space Research (INPE), Cachoeira Paulista, SP, Brazil 12630-970

2. National Fuel Cell Research Center, University of California, Irvine CA 92697

Abstract

This paper presents the electricity and hydrogen co-production concept, a methodology for the study of SOFC hydrogen co-production, and simulation results that address the impact of reformer placement in the cycle on system performance. The methodology is based on detailed thermodynamic and electrochemical analyses of the systems. A comparison is made between six specific cycle configurations, which use fuel cell heat to drive hydrogen production in a reformer using both external and internal reforming options. SOFC plant performance has been evaluated on the basis of methane fuel utilization efficiency and each component of the plant has been evaluated on the basis of second law efficiency. The analyses show that in all cases the exergy losses (irreversibilities) in the combustion chamber are the most significant losses in the cycle. Furthermore, for the same power output, the internal reformation option has the higher electrical efficiency and produces more hydrogen per unit of natural gas supplied. Electrical efficiency of the proposed cycles ranges from 41 to 44%, while overall efficiency (based on combined electricity and hydrogen products) ranges from 45 to 80%. The internal reforming case (steam-to-carbon ratio of 3.0) had the highest overall and electrical efficiency (80 and 45% respectively), but lower second law efficiency (61%), indicating potential for cycle improvements.

Publisher

ASME International

Subject

Mechanical Engineering,Mechanics of Materials,Energy Engineering and Power Technology,Renewable Energy, Sustainability and the Environment,Electronic, Optical and Magnetic Materials

Reference24 articles.

1. Hydrogen from Hydrocarbon Fuels for Fuel Cells;Ahmed;Int. J. Hydrogen Energy

2. Ogden, J. M. , 2002, “Review of Small Stationary Reformers for Hydrogen Production,” Technical Report No. IEA/H2/TR-02/002, International Energy Agency.

3. When Will Electrolytic Hydrogen Become Competitive?;Hammerli;Int. J. Hydrogen Energy

4. Morse, S. , 2004, “Hydrogen—The Fuel of Today,” Technical report, available at www.eng.usf.edu/rnr/ret_2004/HYDROGEN_FUEL_OF_THE_FUTURE.doc

5. Lipman, T. , 2004, “What Will Power the Hydrogen Economy?,” Technical Report No. UCD-ITS-RR-04-10, The Natural Resources Defense Council.

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