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Absorptive separation of carbon dioxide from flue gas of high capacity power plants

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents a methodology for modeling the processes of absorptive separation of carbon dioxide (CO2) from the power plant flue gases. The absorption systemsof two supercritical power plants with the capacity of 460 MW and 600 MW were selected for the study. The process of CO2 separation from flue gases by means of chemical absorption with the use of monoethanolamine and NH3 aqueous solutions was analysed. The power plant demands for power needed for the separation, compression and transport of CO2 to the disposal site was determined. The effects of absorptive separation of CO2 for the power plant were determined, and an economic analysis of such an undertaking was conducted.
Słowa kluczowe
Rocznik
Tom
Strony
29--56
Opis fizyczny
Bibliogr. 21 poz., rys.
Twórcy
autor
  • Silesian University of Technology, Institute of Power Engineering and Turbomachinery, Gliwice ZRE Katowice S.A., Gen. Jankego 13, 40-615 Katowice, Poland
Bibliografia
  • [1] Building Capacity for CO2 Capture and Storage in the APEC Region: A Training Manual for Policy Makers and Practitioners. APEC Energy Working Group Project EWG 03/2004T, March 2005.
  • [2] Chmielniak T.J., Bełch K.: Capture, transportation and storage of CO2 — overview of technologies. Arch. Energ. 38(2008), 1, 61–81 (in Polish).
  • [3] CO2 Capture and Storage. VGB Report on the State of the Art, 2004.
  • [4] Community outreach strategy for CO2 capture and storage projects, a strategy for successfully working with local communities to enhance your CO2 capture and storage project. APEC Energy Working Group EEC Project 03/2004T, March 2005.
  • [5] European Technology Platform Zero Emission Fossil Fuel Power Plants (ZEFFPP). WG1 Rep., 15 June 2006.
  • [6] Freguia S. Rochelle G.T.: Modeling of CO2 capture by aqueous monoethanolamine. AIChE J., 49(2003), 7.
  • [7] http://www.ekokom.pl
  • [8] http://www.saliks.pl
  • [9] IPCC Special Report on Carbon Dioxide Capture and Storage. Cambridge Univ. Press, 2005.
  • [10] Laudyn D.: Cost Efficiency Calculation in Power Engineering. Oficyna Wydawnicza Politechniki Warszawskiej, Warsaw 1999 (in Polish).
  • [11] Pikoń J.: Chemical Apparatus.Equipment. WNT, Warsaw 1983.
  • [12] Rakowski J.: Whether the coal-fired power plants will be in a position to reduce carbon dioxide emission? Energetyka 59(2006), 3, 163—173.
  • [13] Ramm W.M.: Absorption Processes in Chemical Industry. PWT, Warsaw 1954 (in Polish).
  • [14] Skorek J., Kalina J.: Gas Cogeneration Systems. WNT, Warsaw 2005 (in Polish).
  • [15] Zarzycki R., Chacuk A., Starzak M.: Absorption and Ansorbers. WNT, Warsaw 1995 (in Polish).
  • [16] Chmielniak T. , Ziębik A.: Supercritical Coal Based Steam Cycles. Wydawnictwo Politechniki Śląskiej, Gliwice 2010 (in Polish)..
  • [17] www.kyotoprotocol.com
  • [18] GateCycleTM 5.4, Getting Started & Instalation Guide.
  • [19] http://www.aspentech.com/products/aspen-plus/
  • [20] Chilled Ammonium Process (CAP) for Post Combustion CO2 Capture. 2nd Annual Carbon Capture and Transportation Working Group Workshop, Palo Alto, California 23 March 2006.
  • [21] Dors M.: Towards clean energy production Transactions of IFFM, 127(2015), 91–116.
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-7c6d1b39-9491-4000-998a-964872d333d0
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