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Analysis of electricity and heat generation in a PEM fuel cell and a concept of evacuation of heat generated in a fuel cell

Wybrane pełne teksty z tego czasopisma
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The article presents the results of the tests conducted at the Institute of Power Engineering and Turbomachinery of the Silesian University of Technology. A prototype PEM cell with the capacity of 2000W of tubular construction by Power Avenue was the subject of the test. The cell was selected considering its potential use as the dispersed source of electricity and heat. The measurement results of the main operating parameters of the examined cells have been discussed to establish, namely the voltage and current characteristic of the losses occurring in the cell and temperature and energy balance characteristics. A concept of evacuating the heat generated in the fuel cell has also been discussed.
Rocznik
Strony
3--24
Opis fizyczny
Bibliogr. 16 poz.,fot., rys., tab., wykr.
Twórcy
autor
  • Silesian University of Technology, Institute of Power Engineering and Turbomachinery, Konarskiego 18, PL-44-100 Gliwice, Poland
Bibliografia
  • [1] BOWERS B., ZHAO J., RUFFO M., KHAN R., DATTATRAYA D., DUSHMAN N., BEZIAT J., BOUDJEMAA F.: Onboard fuel processor for PEM fuel cell vehicles, International Journal of Hydrogen Energy 32(2007), 1437-1442.
  • [2] BRADLEY T., MOFFITT B., MAVRIS D., PAREKH D.: development and experimental characterization of a fuel cell powered aircraft, J. of Power Sources 171(2007), 793-801.
  • [3] CHMIELNIAK T.: Power Engineering Technology, Silesian University of Technology Publ., WNT, Warszawa 2008 (in Polish).
  • [4] DONERBAUER R.: Micro fuel cells for hest and electric power generation - it is important competition for hot water boiler?, Polish Installator (2001)5: (60-67) (in Polish).
  • [5] FELDZENSZTAJN A., PACUŁA L., PUSZ J.: Hydrogen - Future Petrol, IWT INTECH 2007 (in Polish).
  • [6] HOU Y., ZHUANG M., WAN G.: The analysis for the efficiency properties of the fuel cell engine. Renewable Energy 32(2007), 1175-1186.
  • [7] MARRA D., BOSIO B.: Process analysis of 1MW MCFCplant, Int. J. of Hydrogen Energy 32(2007), 809-818.
  • [8] MASSARDO A. F., BOSIO B.: Assessment of molten carbonate fuel cell models and integration with gas and steam cycles, J. of Engineering for Gas Turbines and Power January 124(2002), 103-109.
  • [9] PILATOWSKY I., ROMERO R.J., ISAZA C.A., GAMBO S.A., RIVERA W., SEBASTIAN P.J., MOREIRAD J.: Simulation of an air conditioning absorption refrigeration system in a co-generation process combining a proton exchange membrane fuel cell, Int. J. of Hydrogen Energy 32(2007), 3174-3182.
  • [10] SANTARELLI M., MACAGNO S.: A thermoeconomic analysis of a PV-hydrogen system feeding the energy requests of a residential building in an isolated valley of the Alps, Energy Conversion and Management 45(2004), 427-451.
  • [11] SOPEL E.: An analysis of electricity and heat generation in low power PEM fuel cell, Doctor’s thesis, Silesian University of Technology, Institute of Turbomachinery and Power Industry Devices, Gliwice (2006) (in Polish).
  • [12] UZUNOGLU M., ONAR O.C., ALAM M.S.: Dynamic behavior of PEM FCPPs’ under various load conditions and voltage stability analysis for stand-alone residential applications, J. of Power Sources 168(2007), 240-250.
  • [13] WEE J.: Applications of proton exchange membrane fuel cell systems, Renewable and Sustainable Energy Reviews 11(2007), 1720-1738.
  • [14] YANG J., SUDIK A., WOLVERTON C.: Activation of hydrogen storage materials in the Li-Mg-N-H system: Effect on storage properties, J. of Alloys and Compounds 430(2007), 334-338.
  • [15] ZÜTTEL A.: Hydrogen storage and distribution systems, Mitig Adapt. Start Glob Change 12(2007), 343-365.
  • [16] www.poweravenue.de
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-article-BGPK-2161-8301
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