Engineering Journal: Science and InnovationELECTRONIC SCIENCE AND ENGINEERING PUBLICATION
Certificate of Registration Media number Эл #ФС77-53688 of 17 April 2013. ISSN 2308-6033. DOI 10.18698/2308-6033
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Article

Numerical simulation of throttling processes in the ramjet engine

Published: 21.09.2022

Authors: Nechiporuk S.Yu., Zaripov D.Kh.

Published in issue: #9(129)/2022

DOI: 10.18698/2308-6033-2022-9-2212

Category: Aviation and Rocket-Space Engineering | Chapter: Thermal, Electric Jet Engines, and Power Plants of Aircrafts

Aimed at determining the maximum allowable pressure in the combustion chamber causing no flow separation in the air intake device, numerical simulation of the throttling process in a ramjet engine was carried out. Calculations were made in two formulations: with local and global time steps. When comparing results obtained using these approaches, the possibility was found to determine the air intake device throttling characteristics without losing the accuracy at the initial stages of designing the ramjet engines with introduction of the local time step. The non-stationary model created the basis for selecting the optimal integration step to minimize computational resources. The flow pulsations period was evaluated for the event of a surge. These pulsations frequencies were registered in the extremely low frequency range.


References
[1] Gunko Yu.P., Mazhul I.I., Nurutdinov V.I. Chislennoye issledovanie razrusheniya sverkhzvukovogo potoka pri drosselirovanii kanala vozdukhozabornika [Numerical study of the supersonic flow breakup during the intake channel throttling]. Teplofizika i aeromekhanika — Thermal Physics and Aeromechanics, 2014, vol. 21, no. 2, pp. 163–178.
[2] Lyubimov D.A., Chestnykh A.O. Analiz RANS/ILES metodom vliyaniya drosselirovaniya na techenie v vozdukhozabornike smeshannogo szhatiya pri bolshikh sverkhzvukovykh skorostyakh [RANS/ILES analysis by the throttling effect method on the flow in a mixed-compression air intake at the high supersonic speeds]. Sixth International school-seminar. Evpatoria, June 5–12, 2016, Russian Academy of Sciences, Zhukovsky Central Aerohydrodynamic Institute. Moscow, Zhukovsky Central Aerohydrodynamic Institute Publ., 2016, pp. 103–104.
[3] Lyubimov D.A., Chestnykh A.O. Analiz RANS/ILES metodom vliyaniya ugla ataki i drosselirovaniya na uroven i spektralnye svoistva pulsatsiy davleniya v vysokoskorostnom vozdukhozabornike [RANS/ILES analysis by the method of the angle of attack and throttling effect on the pressure pulsations level and spectral properties in the high-speed air intake device]. Tezisy dokladov Shestoy Otkrytoy vserossiyskoy (vosemnadtzatoy nauchno-tekhniceskoy) konferentsii po aerodinamike [Abstracts, The Sixth All-Russian (The eighteenth scientific and technical) Conference on Aerodynamics]. Moscow, September 22–27, 2019, Zhukovsky Central Aerohydrodynamic Institute. Moscow, Zhukovsky Central Aerohydrodynamic Institute Publ., 2019, pp. 282–283.
[4] Karasev V.N., Kartovitsky L.L., Levin V.M. Voprosy organizatsii rabochego protsessa v kamere sgoraniya PVRD [Issues of the operation process organization in the ramjet combustion chamber]. Vestnik Moskovskogo aviatsionnogo instituta — Aerospace MAI Journal, 2009, vol. 16, no. 5, 10 p.
[5] Lyubimov D.A., Chestnykh A.O. Issledovanie RANS/ILES metodom techeniya v vysokoskorostnom vozdukhozabornike smeshannogo szhatiya na razlichnykh rezhimakh raboty [RANS/ILES study by the flow method in a high-velocity mixed-compression air intake device at various operating modes]. Teplofizika vysokikh temperatur — High Temperature, 2018, vol. 56, no. 5, pp. 764–776.
[6] Lyubimov D.A., Potekhin I.V. Issledovanie prostranstvennogo vozdukhozabornika na drosselnykh i blizkikh k pompazhnym kharakteristikakh s pomoshchyu RANS/ILES-metoda [Study of spatial air intake device with throttling and close-to-surge characteristics using the RANS/ILES method]. Dvadtsat shestaya konferentsiya po aerodinamike [The Twenty-sixth Scientific and Technical Conference on Aerodynamics]. Zhukovsky, February 26–27, 2015. Moscow, Zhukovsky Central Aerohydrodynamic Institute Publ., 2015, pp. 157–158.
[7] Baskakov A.A., Kuzmichev D.N., Goltsev A.V., Guskov O.V. Issledovanie svoistva protsessa s goreniem topliva v pulsiruyshchikh detonatsionnykh volnakh na modelnoy ustanovke detonatsionnogo goreniya [Study of the process properties with fuel combustion in the pulsating detonation waves on a detonation combustion model set], Evpatoria, June 4–13, 2012, Russian Academy of Sciences, National Academy of Sciences of Ukraine, Zhukovsky Central Aerohydrodynamic Institute, Institute of Hydromechanics of the National Academy of Sciences of Ukraine. Evpatoria, Publishing House of the Moscow Center for Continuous Mathematical Education, 2012, pp. 20–22.
[8] Mitrokhov N.V. Stabilizatsiya goreniya na struyakh nagretogo gazoobraznogo goryuchego v kamerakh PVRD [Combustion stabilization on the heated gaseous fuel in the ramjet chambers]. Moscow, Moscow State Aviation Institute, 2012.
[9] Sorokin V.A., Norenko A.Yu., Loginov A.N., Fedorov D.Yu., Molodtsev A.N., Somov O.V. Raschet i proektirovanie dvukhkanalnogo VZU dlya sovremennykh dvigateley na tverdom toplive [Calculation and design of the two-channel AID for modern solid fuel engines]. Izvestiya Rossiyskoy akademii raketnykh i artilleriyskikh nauk — Proceedings of the Russian Academy of Rocket and Artillery Sciences, 2019, no. 2 (107), pp. 84–93.
[10] Vinogradov V.A., Melnikov Ya.A., Stepanov V.A. Vybor i proyektirovanie prostranstvennogo nereguliruemogo vozdukhozabornika dlya sverkhzvukovogo samoleta [Selection and design of spatial unregulated air intake device for a supersonic business aircraft]. Uchyenye zapiski TsAGI — TsAGI Science Journal, 2017, vol. 48, no. 1, pp. 24–38.