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Analysis of energy storage system with distributed hydrogen production and gas turbine

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Paper presents the concept of energy storage system based on power-to-gas-to-power (P2G2P) technology. The system consists of a gas turbine co-firing hydrogen, which is supplied from a distributed electrolysis installations, powered by the wind farms located a short distance from the potential construction site of the gas turbine. In the paper the location of this type of investment was selected. As part of the analyses, the area of wind farms covered by the storage system and the share of the electricity production which is subjected storage has been changed. The dependence of the changed quantities on the potential of the hydrogen production and the operating time of the gas turbine was analyzed. Additionally, preliminary economic analyses of the proposed energy storage system were carried out.
Rocznik
Strony
65--87
Opis fizyczny
Bibliogr. 16 poz., rys., tab., wz.
Twórcy
autor
  • Silesian University of Technology, Institute of Power Engineering and Turbomachinery Konarskiego 18, 44-100 Gliwice, Poland
autor
  • Silesian University of Technology, Institute of Power Engineering and Turbomachinery Konarskiego 18, 44-100 Gliwice, Poland
  • Silesian University of Technology, Institute of Power Engineering and Turbomachinery Konarskiego 18, 44-100 Gliwice, Poland
Bibliografia
  • [1] www.ure.gov.pl (accessed 12.06.2017).
  • [2] Kotowicz J., Bartela Ł., Skorek-Osikowska A., Janusz-Szymańska K., Chmielniak T., Remiorz L., Iluk T.: Thermodynamic and economic analysis of combined gas-steam cycle integrated with coal gasification and membrane separation of carbon diocide. Silesian University of technology Publishers, Gliwice 2012 (in Polish).
  • [3] http://www.imgw.pl (accessed [1.07.2017]).
  • [4] Kotowicz J., Bartela Ł., Węcel D., Dubiel K.: Hydrogen generator characteristics for storage of renewably-generated. Energy 118(2017), 156–171.
  • [5] GE Energy. LMS100: Flexible Power.
  • [6] GE Energy. New High Efficiency Simple Cycle Gas Turbine – GE’s LMS100TM.
  • [7] Chmielniak T., Rusin A., Czwiertnia K,: Gas Turbines. Ossolineum, Wrocław 2001.
  • [8] Tabari A., Khaledi H., Benisi A.H.: Comperative evaluation of advanced gas turbine cycles with modified blade cooling models. In: Proc. GT2006, ASME turbo Expo 2006: Power for Land, Sea and Air, May 8-11, 2006, Barcelona.
  • [9] Bussar C, Stocker P, Cai Z, et al.: Large-scale integration of renewable energies and impact on storage demand in a European renewable power system of 2050 – sensitivity study. J. Energy Storage 6(2016), 1–10.
  • [10] Milewski J, Szczęśniak A, Lewandowski J.: Dynamic characteristics of auxiliary equipment of SOFC/SOEC hydrogen peak power plant. IERI Procedia 9(2014), 82-87.
  • [11] Kotowicz J., Bartela Ł.: The influence of economic parameters on the optimal values of the design variables of a combined cycle plant. Energy 35(2010), 911–919.
  • [12] Kotowicz J, Bartela Ł.: The influence of the legal and economical environment and the profile of activities on the optimal design features of a natural-gas-fired combined heat and power plant. Energy 36(2011), 1, 328–338.
  • [13] Singh, S., Jain, S., Ps, V., Tiwari, A.K., Nouni, M.R., Pandey, J.K., et al.: Hydrogen: A Sustainable Fuel for Future of the Transport Sector. Renew. Sust. Energ. Rev. 51(2015), 623–633.
  • [14] Bartela Ł., Kotowicz J., Dubiel K.: Technical – economic comparative analysis of the energy storage systems equipped with the hydrogen generation installation. J. Power Technologies 96 (2016), 2, 92–100.
  • [15] http://vertis.com (accessed 18.09.2017).
  • [16] Weinert J.X., Shaojun L., Ogden J.M., Jianxin M.: Hydrogen refueling station costs in Shanghai. Int. J. Hydrogen Energ.32(2007), 4089–4100.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e77a87e8-9e3e-4df2-83fe-6b290ef778ef
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