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Use of a gas turbine in a hybrid power plant integrated with an electrolyser, biomass gasification generator and methanation reactor

Wybrane pełne teksty z tego czasopisma
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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The main objective of this paper is to evaluate the thermodynamic potential of a complex hybrid power plant based on a gas turbine, integrated with an electrolyser powered by: a wind farm, a biomass gasification unit and a methanation reactor. The system serves as an electricity accumulator. The calculation methodology and the basic assumptions for the analysis are presented. The calculations provided the basic thermodynamic parameters of the streams in all the major points of the system. A gas turbine was selected and key thermodynamic indicators of the system operation were determined. The annual products were calculated and the influence of the size of electrolyser on the share of electricity supply from the wind farm was presented.
Rocznik
Strony
73–--80
Opis fizyczny
Bibliogr. 20 poz., rys., tab., wykr.
Twórcy
  • Institute of Thermal Technology, Silesian University of Technology, Konarskiego 22, 41-106 Gliwice, Poland
autor
  • Institute of Thermal Technology, Silesian University of Technology, Konarskiego 22, 41-106 Gliwice, Poland
autor
  • Institute of Thermal Technology, Silesian University of Technology, Konarskiego 22, 41-106 Gliwice, Poland
autor
  • Institute of Thermal Technology, Silesian University of Technology, Konarskiego 22, 41-106 Gliwice, Poland
Bibliografia
  • [1] H. Zhao, Q. Wu, S. Hu, H. Xu, C. N. Rasmussen, Review of energy storage system for wind power integration support, Applied Energy 137 (2015) 545–553.
  • [2] M. Jentsch, T. Trost, M. Sterner, Optimal use of power-to-gas energy storage systems in an 85% renewable energy scenario, Energy Procedia 46 (2014) 254–261.
  • [3] M. Götz, J. Lefebvre, F. Mörs, A. M. Koch, F. Graf, S. Bajohr, R. Reimert, T. Kolb, Renewable power-to-gas: A technological and economic review, Renewable Energy 85 (2016) 1371–1390.
  • [4] T. Schaaf, J. Grünig, M. R. Schuster, T. Rothenfluh, A. Orth, Methanation of co2-storage of renewable energy in a gas distribution system, Energy, Sustainability and Society 4 (1) (2014) 1–14.
  • [5] S. Schiebahn, T. Grube, M. Robinius, V. Tietze, B. Kumar, D. Stolten, Power to gas: Technological overview, systems analysis and economic assessment for a case study in germany, International journal of hydrogen energy 40 (12) (2015) 4285–4294.
  • [6] A. Odukoya, G. Naterer, M. Roeb, C. Mansilla, J. Mougin, B. Yu, J. Kupecki, I. Iordache, J. Milewski, Progress of the iahe nuclear hydrogen division on international hydrogen production programs, International Journal of Hydrogen Energy.
  • [7] J. Milewski, G. Guandalini, S. Campanari, Modeling an alkaline electrolysis cell through reduced-order and loss-estimate approaches, Journal of Power Sources 269 (2014) 203–211.
  • [8] D. We˛cel, W. Ogulewicz, J. Kotowicz, M. Jurczyk, Dynamika pracy elektrolizerów produkuja˛cych wodór, Rynek Energii 122 (1) (2016) 59–65.
  • [9] J. Milewski, J. Lewandowski, A. Miller, Reducing co2 emissions from a gas turbine power plant by using a molten carbonate fuel cell, Chemical and Process Engineering 29 (4) (2008) 939–954.
  • [10] K. Lubikowski, S. Radkowski, K. Szczurowski, M. Wikary, Seebeck phenomenon, calculation method comparison, Journal of Power Technologies 95 (5) (2015) 63.
  • [11] I. Hannula, Co-production of synthetic fuels and district heat from biomass residues, carbon dioxide and electricity: Performance and cost analysis, Biomass and Bioenergy 74 (2015) 26–46.
  • [12] S. Rönsch, J. Schneider, S. Matthischke, M. Schlüter, M. Götz, J. Lefebvre, P. Prabhakaran, S. Bajohr, Review on methanation–from fundamentals to current projects, Fuel 166 (2016) 276–296.
  • [13] H. Iskov, N. B. Rasmussen, Global screening of projects and technologies for power-to-gas and bio-sng, A reference report. Danish Gas Technology Centre, Horsholm.
  • [14] P. Haro, F. Johnsson, H. Thunman, Improved syngas processing for enhanced bio-sng production: A techno-economic assessment, Energy 101 (2016) 380–389.
  • [15] J. Milewski, M. Wołowicz, R. Bernat, L. Szablowski, J. Lewandowski, Variant analysis of the structure and parameters of sofc hybrid systems, in: Applied Mechanics and Materials, Vol. 437, Trans Tech Publ, 2013, pp. 306–312.
  • [16] D. Barisano, G. Canneto, F. Nanna, E. Alvino, G. Pinto, A. Villone, M. Carnevale, V. Valerio, A. Battafarano, G. Braccio, Steam/oxygen biomass gasification at pilot scale in an internally circulating bubbling fluidized bed reactor, Fuel Processing Technology 141 (2016) 74–81.
  • [17] C. Van der Meijden, L. Rabou, A. Van der Drift, B. Vreugdenhil, R. Smit, Large scale production of bio methane from wood, in: International Gas Union Research Conference IGRC, Soeul, South Korea, 2011, pp. 19–21.
  • [18] J. Kopyscinski, T. J. Schildhauer, S. M. Biollaz, Production of synthetic natural gas (sng) from coal and dry biomass–a technology review from 1950 to 2009, Fuel 89 (8) (2010) 1763–1783.
  • [19] M. Sudiro, A. Bertucco, Natural Gas, INTECH Open Access Publisher, 2010, Ch. Synthetic natural gas (SNG) from coal and biomass: a survey of existing process technologies, open issues and perspectives.
  • [20] Kotowicz, Ł. Bartela, A. Skorek-Osikowska, K. Janusz-Szyma´nska, T. Chmielniak, L. Remiorz, T. Iluk, Analiza termodynamiczna i ekonomiczna układu gazowo-parowego zintegrowanego ze zgazowaniem węgla oraz membranowa˛ separacja˛ ditlenku węgla, Wydawnictwo Politechniki Śląskiej, Gliwice, 2012.
Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-a53e6f0b-cc7e-4ac6-9ee8-b5bb02c50131
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