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Abstract: . . . cell. Both models are based on real plant data and the simulations are selected according to real operating conditions. The paper also presents the details of a novel integrated gasification – fuel cell steady state model. The paper reports results of computer simulation for a realistic configuration of power generation system by MCFC, focusing on macroscopic quantities of interest such as stack efficiency, global process electrical efficiency, cogenerative efficiency, integrated with a consistent . . . . . . systems, International Journal of Energy Research, 21, (1997), 69-76. He, W., Dynamic model for molten carbonate fuel-cell power-generation systems, Energy Conversion and Management, 39, (1998), 775-783. Page 11 11 He, W., Q. Chen, Three-dimensional simulation of a molten carbonate fuel cell stack using computational fluid dynamics technique, J. Power Sources, 55, (1995), 25-32. Heidebrecht, P., K. Sundmacher, Molten Carbonate fuel cell (MCFC) with internal reforming: model-based analysis of cell . . . . . . biomass energy Computer Simulation of Stationary Energy Production from Biomass by Molten Carbonate Fuel Cells Page 1 Proceedings International Hydrogen Energy Congress and Exhibition IHEC 2005 Istanbul, Turkey, 13-15 July 2005 1 Computer Simulation of Stationary Energy Production from Biomass by Molten Carbonate Fuel Cells Maurizio Fermeglia and Gennaro Longo ICS-UNIDO, AREA Science Park, Padriciano 99, 34012 Trieste, Italy DICAMP, University of Trieste, Piazzale Europa 1, 34127 Trieste, Italy maurizio.fermeglia@dicamp.units.it . . . . . . reformer in an internal reforming molten carbonate fuel cell by mathematical modelling, J. Power Sources, 104, (2002) 140-147. Shinoki, T., M. Matsumura, A. Sasaki, Development of an internal reforming molten carbonate fuel cell stack, IEEE Transaction on Energy Conversion, 10, (1995), 722-728. vv. Authors, Techno-Economic Analysis of Hydrogen Production by Gasification of Biomass, Final Technical Report for the Period September 15, 2001 to September 14, 2002, GTI. Yoshiba, F., N. Ono, Y. Izaky, T. Watanabe, . . . . . . Sources, 104, (2002) 140-147. Shinoki, T., M. Matsumura, A. Sasaki, Development of an internal reforming molten carbonate fuel cell stack, IEEE Transaction on Energy Conversion, 10, (1995), 722-728. vv. Authors, Techno-Economic Analysis of Hydrogen Production by Gasification of Biomass, Final Technical Report for the Period September 15, 2001 to September 14, 2002, GTI. Yoshiba, F., N. Ono, Y. Izaky, T. Watanabe, T. Abe, Numerical analyses of the internal condition of molten carbonate fuel cell . . . . . . modeling molten carbonate fuel-cell cathodes by electrochemical potentials, J. of Applied Electrochemistry, 30, (2000), 1015-1021. Fermeglia M., A. Cudicio, G. De Simon, G. Longo, S. Pricl, Process simulation for molten carbonate fuel cells, Fuel Cells – From Fundamentals to Systems, Topical Issue “Modeling of Fuel Cell Systems”, 5, (2005), 66-79. Fontes, E., C. Lagergren, D. Siminsson, Mathematical modelling of the MCFC cathode – On the linear polarization of the NiO cathode, J. of Electroanalytical . . . --3000,6,250,3477,32434
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