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Abstrakty
High temerature fuel cells of the solid oxide type (SOFC) are simple electrochemical devices that operate at 1000 degrees C and are capable of converting the chemical energy of natural gas to AC electric power at approximately 55-60% efficiency (net AC/LHV in atmospheric pressure). In this paper, a zero-dimensional model of a single tubular SOFC with internal reforming of hydrocarbons is proposed which has been both numerically implemented and parametrically analyzed.
Czasopismo
Rocznik
Tom
Strony
53--72
Opis fizyczny
Bibliogr. 15 poz., rys., tab.
Twórcy
autor
- Thermo-Chemical Power Dept., The Szewalski Institute of Fluid-Flow Machinery, Polish Academy of Sciences, ul. Fiszera 14, 80-952 Gdańsk, Poland
autor
- Thermo-Chemical Power Dept., The Szewalski Institute of Fluid-Flow Machinery, Polish Academy of Sciences, ul. Fiszera 14, 80-952 Gdańsk, Poland, jb@imp.gda.pl
Bibliografia
- [1] Veyo S.E.. SHOCKLING L. A., DEDERER J. T., GILLETT J. E., LUNDBERG W. Tubular solid oxide fuel cell/ gas turbine hybrid cycle power systems, Status, ASME J. of Eng. for Gas Turbines and Power, 124, 2002, 845-849.
- [2] RAO A.D., SAMUELSEN G.S.: Analysis strategies for tubular solid oxide fuel 503-509.
- [3] KIMIJIMA S., KASAGI N.: Performance evaluation of gas turbine-fuel cell hybrid micro generation system, Proc. ASME TURBO EXPO, GT-2002-30111, 2002, 1-10. 2021 based hybrid systems, ASME J. of Eng. for Gas Turbines and Power, 124, 20
- [4] MASSARDO A.F.,LUBELLI F.: Internal reforming solid oxide fuel cell-gas turbine combined cycles: Part A-Cell Model and cycle thermodynamic analysis, ASME J. of Eng, for Gas Turbines and Power, 122, 2000, 27-35.
- [5] CHOW A., WYSZYNSKI M. L.: Modeling the monolithic exhaust converter/fuel re former reactor-a zonal approach, SAE Paper 880282, 2002, 1-23.
- [6] GEMMEN R. S., ROGERS W. A, PRINKEY M.T: Application of a computational fluid dynamics code to fuel cells integrated SOFC fuel cell and post oxidizer, www.fluent.com, TN128, 2002, 1-10.
- [7] BESSETTE N. F.: Modeling and Simulation for SOFC Power Systems, PhD Disser tation, Georgia Institute of Technology, 1994, 1-212.
- [8] CAMPANARI S.: Thermodynamic model and parametric analysis of a tubular SOFC module, J. of Power Sources, 92, 2001, 26-34.
- [9] IWATA M., HIKOSAKA T., MORITA M., IWANARI T., ITO K., ONDA K., ESAKI Y., SAKAKI Y., NAGATA S.: Performance analysis of planar - type unit SOFC considering current and temperature distributions, Solid State Ionics, 132, 2000, 297-308.
- [10] TOPOLSKI J.: Combustion diagnosis within combined gas-steam cycles, PhD Disser tation, Institute of Fluid-Flow Machinery, PASci, Gdańsk, 2002, 1-204 (in Polish).
- [11] TOPOLSKI J., LEMAŃSKI M., BADUR J.: Mathematical model of the pressurized SOFC with the COM-GAS code, Heat and Power Problems Conf., 1-10, Warszawa, 12-13.12.2003, (in Polish).
- [12] BADUR J., LEMAŃSKI M.: Inverted Brayton Cycle- an efficient tool for recovery of waste heat, Energetyka Cieplna i Zawodowa, 221, 2003, 46-48 (in Polish).
- [13] LEMAŃSKI M.: Detailed balances of enthalpy and chemical species in the tubular SOFC, Report of the IFFM, No. 3175/2003, 1-26 (in Polish).
- [14] ZANON F., LAZZARETTO A.: A tubular solid oxide fuel cell model, http://www.efpe.org
- [15] http://www.siemenswestinghouse.com/en/fuelcells/hybrids/indec.cfm
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BGPK-0638-3001