1. bookVolume 52 (2022): Edizione 4 (December 2022)
Dettagli della rivista
License
Formato
Rivista
eISSN
2083-4608
Prima pubblicazione
26 Feb 2008
Frequenza di pubblicazione
4 volte all'anno
Lingue
Inglese
Accesso libero

The Peculiarities of Applying CAD/CAE Systems for the Primary Combustion Chamber Flame Tube Cycle Life Prolongation of the Tactical Military Aircraft Afterburning Turbofan Jet Engine

Pubblicato online: 07 Dec 2022
Volume & Edizione: Volume 52 (2022) - Edizione 4 (December 2022)
Pagine: 167 - 176
Dettagli della rivista
License
Formato
Rivista
eISSN
2083-4608
Prima pubblicazione
26 Feb 2008
Frequenza di pubblicazione
4 volte all'anno
Lingue
Inglese

1. Arthur Lefebvre.: Processes in the combustion chambers of gas turbine engines: translated from English. Moscow: Mir, 1986. 246 p. [in Russian]. Search in Google Scholar

2. ANSYS fluent theory guide. Release 14.0. ANSYS Inc. 2011. 794 p. [in English]. Search in Google Scholar

3. Aviation and rocket-space technology. Bulletin of the Ufa State Aviation Technical University V.16. No. 2 (47). Ufa: UGATU, 2012. pp 98 – 105. [in Russian]. Search in Google Scholar

4. Bakulev V.I. et. al. Theory, calculation and design of aircraft engines and power plants. Moscow: MAI, 2003. 688 p. [in Russian]. Search in Google Scholar

5. Boguslaev A.V. et. al.: Progressive technologies for simulation, optimization and intelligent automation of the stages of the life cycle of aircraft engines. Zaporozhye: Motor Sich JSC, 2009. 468 p. [in Russian]. Search in Google Scholar

6. Bolshagin V.I., Sarkisov A.A.: GTE combustion chambers. Ufa: S. Ordzhonikidze UAI, 1982. 42 p. [in Russian]. Search in Google Scholar

7. F. Wang, Y. Huang and T. Deng: Gas Turbine Combustor Simulation With Various Turbulent Combustion Models. ASME Turbo Expo 2009: Power for Land, Sea, and Air June 8–12, 2009 Orlando, Florida, USA. pp 155-165. [in English]. Search in Google Scholar

8. Ferziger, Joel H.: Computational Methods for Fluid Dynamics / Joel H. Ferziger / Milovan Perit. - 3., rev. ed. Springer, 2002. [in English].10.1007/978-3-642-56026-2 Search in Google Scholar

9. Kostochkin V.V. Reliability of aircraft engines and power plants. Moscow: Mashinostroenie, 2nd ed., 1988. 272 p. [in Russian]. Search in Google Scholar

10. Lukachev S.V., Abrashkin V.Yu., Lanskij A.M., Matvejev S.G.: Correlation-regression model for estimating the circumferential non-uniformity of the gas temperature field at the outlet of the combustion chambers of the small-sized gas turbine engines. Bulletin of the Academician S.P. Korolev Samara State Aerospace University. (National Research University). No. 3 (41), 2013. pp 118–124. [in Russian].10.18287/1998-6629-2013-0-3-1(41)-118-124 Search in Google Scholar

11. Modest.: Radiative heat transfer. Third edition. The University of California at Merced. 2013. 867p. [in English].10.1016/B978-0-12-386944-9.50023-6 Search in Google Scholar

12. Patankar, Suhas V.: Numerical Heat Transfer and Fluid Flow. Hemisphere Publishing Corporation. 1980. 200p. [in English]. Search in Google Scholar

13. Peters N.: Turbulent Combustion. Cambridge monographs on mechanics. Cambridge University Press, 2000. [in English]. Search in Google Scholar

14. Troshchenko V.T., Pokrovskij V.V., Prokopenko A.V.: Crack resistance of materials under cyclic loading. Kyiv: Nauk. Dumka, 1987. 256 p. [in Russian]. Search in Google Scholar

15. Wilcox D. C.: Turbulence modeling for CFD, 3-rd ed. DCW Industries.2006. 536 p. [in English]. Search in Google Scholar

Articoli consigliati da Trend MD