Open Access

Parametric analysis of the efficiency of the combined gas-steam turbine unit of a hybrid cycle for the FPSO vessel


Cite

1. Kehlhofer R. Combined-cycle gas and steam turbine power plants. Penn Well Publishing Co. 1997;388. Search in Google Scholar

2. Carcasci C., Pacifici B., Winchler L., Cosi L., Ferraro R. Thermoeconomic Analysis of a One-Pressure Level Heat Recovery Steam Generator Considering Real Steam Turbine Cost. Energy Procedia 2015; 82:591-598.10.1016/j.egypro.2015.11.877 Search in Google Scholar

3. Nirbito W., Arif Budiyanto M., Muliadi R. Performance Analysis of Combined Cycle with Air Breathing Derivative Gas Turbine, Heat Recovery Steam Generator, and Steam Turbine as LNG Tanker Main Engine Propulsion System. J. Mar. Sci. Eng. 2020; 8(726): 1-15. Search in Google Scholar

4. Matveev I.B., Serbin S.I., Washchilenko V.N. Plasma-assisted treatment of sewage sludge. IEEE Trans. Plasma Sci. 2016; 44(12):3023-3027.10.1109/TPS.2016.2604849 Search in Google Scholar

5. Cheng D.Y., Nelson, A.L.C. The chronological development of the Cheng cycle steam injected gas turbine during the past 25 years. Proceeding of ASME Turbo Expo 2002, Amsterdam, GT-2002-30119. 2002;1-8.10.1115/GT2002-30119 Search in Google Scholar

6. Bondin Y.N., Krivutsa V.A., Movchan S.N., Romanov V.I., Kolomeev V.N., Shevtsov A.P. Operation experience of a gas turbine unit GPU-16K with steam injection. Gas Turbine Technologies 2004; 5:18-20 (in Russian). Search in Google Scholar

7. Movchan S.N., Romanov V.V., Chobenko V.N., Shevtsov A.P. Contact Steam-and-Gas Turbine Units of the “AQUARIUS” Type: The Present Status and Future Prospects. Conference: ASME Turbo Expo 2009: Power for Land, Sea, and Air. 2009;1-7.10.1115/GT2009-60339 Search in Google Scholar

8. Romanovsky G.F., Washchilenko N.V., Serbin S.I. Theoretical bases of designing ship gas turbine units. Ukrainian State Maritime Technical University. 2003 (in Ukrainian). Search in Google Scholar

9. Offshore Magazine. Leadon FPSO delivered on time, complete, within budget. 2002. https://www.offshore-mag.com/production/article/16759844/leadon-fpso-delivered-on-time-complete-within-budget. Search in Google Scholar

10. Cherednichenko O., Serbin S., Dzida M. Application of thermo-chemical technologies for conversion of associated gas in diesel-gas turbine installations for oil and gas floating units. Polish Maritime Research 2019; 3(103):181-187.10.2478/pomr-2019-0059 Search in Google Scholar

11. Ocyan. FPSO Cidade de Itajaí. 2017. https://api.ocyan-sa.com/sites/default/files/2018-09/cidade_do_itajai_0.pdf. Search in Google Scholar

12. Offshore Technology. Triton Oil Field, North Sea Central. 2018. https://www.offshore-technology.com/projects/triton/. Search in Google Scholar

13. Gas Turbine Engine UGT25000, https://zmturbines.com/en/serial-production/engines/ugt-25000/. Search in Google Scholar

14. Gas Turbine World. 2004-05 GTW Handbook, Pequot Publishing Inc., 2006. Search in Google Scholar

15. Serbin S.I., Kozlovskyi A.V., Burunsuz K.S. Investigations of non-stationary processes in low emissive gas turbine combustor with plasma assistance. IEEE Trans. Plasma Sci. 2016; 44(12):2960-2964.10.1109/TPS.2016.2607461 Search in Google Scholar

16. Matveev I.B., Serbin S.I., Vilkul V.V., Goncharova N.A. Synthesis Gas Afterburner Based on an Injector Type Plasma-Assisted Combustion System. IEEE Trans. Plasma Sci. 2015; 43(12):3974-3978.10.1109/TPS.2015.2475125 Search in Google Scholar

17. Matveev I., Serbin S., Mostipanenko A. Numerical optimization of the “Tornado” combustor aerodynamic parameters. Collection of Technical Papers. 45th AIAA Aerospace Sciences Meeting, Reno, Nevada, AIAA 2007-391. 2007; 7:4744-4755. Search in Google Scholar

18. Magnussen B.F., Hjertager B.H. On mathematical models of turbulent combustion with special emphasis on soot formation and combustion. 16th Int. Symp. on Combustion. The Combustion Institute. 1976; 16(1):719-729. Search in Google Scholar

19. 19. Launder B.E., Spalding D.B. Lectures in Mathematical Models of Turbulence. London: Academic Press; 1972. Search in Google Scholar

20. Serbin S.I., Matveev I.B. Theoretical and experimental investigations of the plasma-assisted combustion and reformation system. IEEE Trans. Plasma Sci. 2010; 38(12):3306-3312. Search in Google Scholar

21. Serbin S.I., Matveev I.B., Goncharova N.A. Plasma assisted reforming of natural gas for GTL. Part I. IEEE Trans. Plasma Sci. 2014; 42(12):3896-3900.10.1109/TPS.2014.2353042 Search in Google Scholar

eISSN:
2083-7429
Language:
English
Publication timeframe:
4 times per year
Journal Subjects:
Engineering, Introductions and Overviews, other, Geosciences, Atmospheric Science and Climatology, Life Sciences