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Tytuł artykułu

Clean gas technologies - towards zero-emission repowering of Pomerania

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the paper a brief review of processes for energy conversion developed recently within the framework of clean gas te chnologies is presented, in cluding projects for future repowering of Pomerania. The main aim of this work is to show the diferent thermodynamcs cycles which improve efficiency and/or decrease emissions such as: Cheng cycle, Szewalski cycle, LOTHECO cycle, hybrid pSOFC/GT cycle, inverse Brayton cycle, low-emission cycle and zero-emission cycle. For that purpose,cycles and results of analysis are frst studied and, secondly, new concept is presented. The role of coupled analysis 0D and 3D in cycle's devices is also discussed.
Rocznik
Tom
Strony
51--80
Opis fizyczny
Bibliogr. 65 poz., rys., tab.
Twórcy
  • The Szewalski Institute of Fluid-Flow Machinery of the Polish Academy of Sciences, Energy Conversion Department, Fiszera 14, 80-231 Gdańsk, Poland
autor
  • The Szewalski Institute of Fluid-Flow Machinery of the Polish Academy of Sciences, Energy Conversion Department, Fiszera 14, 80-231 Gdańsk, Poland
Bibliografia
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  • [12] Jesionek K., Chrzczonowski A., Badur J., Lemański M.: On the parametric analysis of performance of advanced Cheng cycle. Zeszyty Naukowe Katedry Mechaniki Stosowanej, 23, 12_23, Silesian University of Technology, Gliwice 2004 (in Polish).
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  • [14] Kozłów P. Badur J.: Egzergetic analysis of modernization steam turbine. Systems 44(2006), 544-565 (in Polish).
  • [15] Lemański M.: Analyses of Thermodynamic Cycles with Fuel Cells and Gassteam Turbine. PhD thesis, IFFM PASci, Gdańsk 2007, 1-141 (in Polish).
  • [16] Lemański M., Badur J.: Parametrical analysis of a tubular pressurized SOFC. Arch. Thermodyn. 25(2004), 1, 53-72.
  • [17] Lemański M. Karcz M.: Performance of lignite-syngas operated tubular Solid Oxide Fuell Cell. Chem. Process Eng. 23(2007), 1-24.
  • [18] Marszałek M., Szyrejko Cz., Knitter D., Kozłów P., Szostak M., Karcz M., Kucharski R., Kowalczyk S., Wiśniewski A., Badur J.: Complex analysis of outlet of high-rotating steam turbine in changing condition of work. In: Proc. VIII Conf. 'Elektronie Cieplne', Słok 2007, 84-96 (in Polish).
  • [19] Nastałek L., Karcz M., Sławiński D., Zakrzewski W., Ziółkowski P., Szyrejko Cz., Topolski J., Werner R., Badur J.: On the efficiency of a turbine stage; classical and CFD definitions. Trans. IFFM 124(2012), 17-40.
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  • [29] Topolski J., Badur J.: Efficiency of HRSG within a combined cycle with gasification and sequential combustion at GT26 turbine. Proc. COMPOWER 2000, 291-298.
  • [30] Topolski J., Lemański M., Badur J.: Mathematical model of high temperature fuel cell SOFC by COM-GAS code. In: Proc. Conf. _Research and Development in Power Engineering, Warszawa 2003 (in Polish).
  • [31] Topolski J., Badur J.: Comparison of the combined cycle efficiencies with different heat recovery steam generators. Trans. IFFM 111(2002), 5-16.
  • [32] Wang F.J., Chiou J.S.: Performance improvement for a simple cycle gas turbine GENSET - a retrofitting example. Appl. Therm. Eng. 22(2002), 1105-1115.
  • [33] Wołoncewicz Z., Buraczewski J.: Experience of exploitation of gas-steam cycle in EC Gorzów S.A. 1999-2003. In: Proc. Conf. ,,Elektrownie i elektrociepłownie gazowe i gazowo-parowe 2003’’, Poznań-Kiekrz 2003, 55_62 (in Polish).
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  • [35] Ziółkowski P.: Numerical Analysis of Exploitation Conditions of Gorzów CHP Heat Cycle before and after Modernization. MSc thesis, Gdańsk Univeversity of Technology, Gdańsk 2011 (in Polish).
  • [36] Ziółkowski P., Lemański M., Badur J., Nastałek L.: Power augmentation of PGE Gorzów gas turbine by steam injection - thermodynamic overview. Rynek Energii 98(2012), 161-167.
  • [37] Ziółkowski P., Lemański M., Badur J., Zakrzewski W: Increase of gas turbine efficiency by use of the Szewalski idea. Rynek Energii 100(2012), 63_70 (in Polish).
  • [38] Ziółkowski P.: Modification of the gas turbine 55 MWe into low-pollution emission cycle with oxy combustion. In: Proc. VII of Young Scientist, Cracow 2012 (in Polish).
  • [39] Kaproń H., Wasilewski A.: Natural Gas of Fuel XXI Century. Wydawnictwo KAPRINT, Lublin 2012 (in Polish).
  • [40] Lechtenböhmer S., Altmann M., Capito S., Matra Z., Weindrorf W., Zittel W.: Impacts of shale gas and shale oil extraction on the environment and on human health. Manuscript completed in June 2011. Brussels, European Parliament, IP/A/ENVI/ST/2011-07, 2011.
  • [41] Badur J.: Five lectures of contemporary fluid termomechanics. Gdańsk 2005 (in Polish). htpp//www.imp.gda.pl/_leadmin/doc/o2/z3/.../2005_piecwykladow.pdf.
  • [42] Badur J.: Numerical Modeling of Sustainable Combustion at Gas Turbine. IFFM PAS, Gdańsk 2003 (in Polish).
  • [43] Topolski J.: Combustion Diagnosis in Combined Gas-steam Cycle. PhD thesis, IFFM PAS, Gdańsk, 2002 (in Polish).
  • [44] Wiśniewski A., Topolski J., Badur J.: More efficient gas-steam power plant topped by a LiBr absorption chiller. In: ‘Technical, Economic and Environmental Aspects of Combined Cycle Power Plants’, (Z. Domachowski, Ed.), GTU Press, Gdańsk 2004, 183-192.
  • [45] Hada S., Tsukagoshi K., Masada J., Ito E.: Test Results of the World's First 1,600oC J-series Gas Turbine. Mitsubishi Heavy Ind. Tech. Rev. 49(2012), 1.
  • [46] Sztormowski J., Głuch J., Gardzilewicz A., Bogulicz M.: An analysis of the possibilities of increasing the production of electrical energy during the summer season by heat-generating back pressure turbine power units. In: _Technical, Economic and Environmental Aspects of Combined Cycle Power Plants_(Z. Domachowski, Ed.) GTU Press, Gdańsk 2004, 221-228.
  • [47] Głuch J.: Selected problems in determining an efficient operation standard in contemporary heat and flow diagnostics. Pol. Mari. Res. S1/2009, 22-27.
  • [48] Lemański M., Topolski J., Badur J.: Analysis strategies for gas turbine - Solid Oxide Fuel Cell hybrid cycles. In: ‘Technical, Economic and Environmental Aspects of Combined Cycle Power Plants’ (Z. Domachowski, Ed.) GTU Press, Gdańsk 2004, 213-220.
  • [49] Jesionek K., Chrzczonowski A., Ziółkowski P., Badur J.: Power enhancement of the Brayton cycle by steam utilization. Arch. Thermodyn. 33(2012), 3, 39-50.
  • [50] Kaczmarczyk O.: Compressor heat pump characteristics. In: ,,Współczesne technologie i konwersja energii’’ (J. Szantyr, Ed.) Gdańsk 2011, 177-184 (in Polish).
  • [51] Badur J., Lemański M., Kaczmarczyk O.: Trigeneration of the energetic heat and power plant cycle loaded by the refrigeration device. Proc. Pierwszych Krajowych Warsztatów ,,Gminne Centra Energetyczne’’, Białystok 10-11 March 2011, (2011) 16-40 (in Polish).
  • [52] Karcz M., Badur J., Kucharski R., Lemański M., Kowalczyk S., Wiśniewski A., Lewandowski S.: Numerical modeling of degradation effects in a gas turbine silo-combustion chamber. In: ‘Technical, Economic and Environmental Aspects of Combined Cycle Power Plants’ (Z. Domachowski, Ed.), GTU Press, Gdańsk 2004, 135-143.
  • [53] Badur J., Karcz M., Kucharski R., Lemański M., Kowalczyk S.: Numerical modelling of the flame-less combustion processes in GT8C. Int. Flame Research Bull (N. Fricker, Ed.), 2003, 1-14.
  • [54] Chrzczonowski A.: Cheng Cycle as Proecological Electrical and Heat Energy Source. PhD thesis, Wroclaw University of Technology, Wrocław 2006 (in Polish).
  • [55] Veyo S., Lundberg W.L., Vora S.D., Litzinger K.P.: Status of pressurized SOFC/GAS turbine power system development at Siemens Westinghouse. Proc. ASME Turbo Expo 2002 GT-2002-30670 (2002) 1-7.
  • [56] www.siemenswestinghouse.com
  • [57] Kniter D., Badur J.: Coupled analysis 0D and 3D for an axial force. Systems Spec. Iss. 13(2008), 1/2, 244-262 (in Polish).
  • [58] Pawlik M., Kotlicki T.: Innovative coal technologies for CO2 emissions limits. Rynek Energii 94(2011), 3, 60-68 (in Polish).
  • [59] htpp//www.ge-energy.com
  • [60] Karcz M.: Performance of a tubular fuel cell with internal methane reforming. Chem. Proc. Eng. 28(2007) 307-321.
  • [61] Karcz M.: From 0D to 1D modeling of tubular solid oxide fuel cell. Energ. Convers. Manage. 50(2009), 2307-2315.
  • [62] Karcz M.: Prediction of the electric current flux in a tubular fuel cell by means of a 1D model. Chem. Proc. Eng. 30(2009), 267-278.
  • [63] Karcz M., Kowalczyk S., Badur J. : On the influence of geometric nanostructural properties of porous materials on the modelling of a tubular fuel cell. Chem. Proc. Eng. 31(2010), 489-503.
  • [64] Zakrzewski W.: Evaluation of modified two-equation turbulence model for nonpremixed jet diffusion flame. Arch. Combust. 32(2012), 3-4, 93-100.
  • [65] Ziółkowski P., Zakrzewski W., Kaczmarczyk O., Badur J.: The thermodynamic analysis of the double Brayton cycle with use of oxy combustion and capture of the CO2 (in preparation).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-cdbbcb3b-19a5-4edd-a2c5-05f8921dabc5
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