Development of mathematical model of processes in gas generator with unitary fuel for powering turbine of liquid rocket engine
https://doi.org/10.25206/2588-0373-2023-7-3-82-88
EDN: TWJQSQ
Abstract
The article considers the dynamic model of a gas generator with control throttle of liquid rocket engine with pumping supply system and unitary fuel for powering the turbine. The system of dynamic equations describing the processes occurring in a single-component gas generator and a throttle valve is obtained. The mathematical model makes it possible to analyze and identify the main patterns of the influence of input quantities on the controlled quantity.
About the Author
A. B. YakovlevRussian Federation
Yakovlev Aleksey Borisovich, Candidate of Technical Sciences, Associate Professor, Head of Aircraft and Rocket Building Department
AuthorID (RSCI): 488687
AuthorID (SCOPUS): 56503089200
ResearcherID: E-7451-014
Omsk, Mira Ave., 11, 644050
References
1. Orlin S. A. Povysheniye ekonomichnosti kislorodno-uglevodorodnykh zhidkostnykh raketnykh dvigateley razlichnogo naznacheniya putem vnedreniya promezhutochnogo okhladitelya [Increase of intermediate coolant lox-he engines efficiency of various application] // Inzhenernyy zhurnal: nauka i innovatsii. Engineering Journal: Science and Innovation. 2013. No. 4 (16). P. 30. (In Russ.).
2. Abdullin M. R., Davlatov N. B., Shigapov R. R. Analiz i klassifikatsiya putey sovershenstvovaniya zhidkostnykh raketnykh dvigateley odno- i mnogorazovogo ispol’zovaniya na uglevodorodnykh i azotosoderzhashchikh goryuchikh i okhladitelyakh [Analysis and classification of the ways to improve liquid rocket engines of non-reusable and reusable applying on hydrocarbon and nitrogen-containing fuels and coolers] // XXIV Tupolevskiye chteniya (shkola molodykh uchenykh). XXIV Tupolevskiye chteniya (shkola molodykh uchenykh). In 6 vols. Kazan, 2019. Vol. 2. P. 314–320. (In Russ.).
3. Piunov V. Yu., Nazarov V. P., Kolomentsev A. I. Sovershenstvovaniye energeticheskikh kharakteristik kislorodno-vodorodnykh zhidkostnykh raketnykh dvigateley razgonnykh blokov metodom optimizatsii konstruktivnykh skhem [Upper stage oxygen—hydrogen rocket engine energy characteristics improvement by structural scheme optimization method] // Vestnik Moskovskogo aviatsionnogo instituta. Aerospace MAI Journal. 2017. Vol. 24, no. 3. P. 23–33. (In Russ.).
4. Kosovyagin K. V., Skomorokhov G. I. Modelirovaniye gazodinamicheskogo trakta tarel’chatogo sopla zhidkostnogo raketnogo dvigatelya s obratnym potokom v kol’tsevoy kamere sgoraniya [Design of the gas dynamic tract of the disc nozzle of a liquid rocket engine with reverse flow in an annular combustion chamber] // Vestnik Voronezhskogo gosudarstvennogo tekhnicheskogo universiteta. Bulletin of the Voronezh State Technical University. 2019. Vol. 15, no 1. P. 100–106. DOI: 10.25987/VSTU.2019.15.1.015. (In Russ.).
5. Babkin A. I., Belov S. I., Rutovskij N. B. [et al.]. Osnovy teorii avtomaticheskogo upravleniya raketnyh dvigatel'nyh ustanovok [Fundamentals of the theory of automatic control of rocket propulsion systems]. 2nd ed. Moscow: Mashinostroyeniye Publ., 1986. 458 p. (In Russ.).
6. Yakovlev A. B. K voprosu o vybore skhemy dvigatel’noy ustanovki letatel’nogo apparata [To a question of a choice of the scheme of the propulsion system of the aircraft] // Omskiy nauchnyy vestnik. Omsk Scientific Bulletin. 2013. No. 1 (117). P. 109–113. (In Russ.).
7. Belyakov V. V., Ivchenko V. D. Sistema upravleniya tyagoy raketnogo dvigatelya na osnove parametrov rabochego tela [Traction control system rocket engine based on the parameter combustion products] // Vestnik MGTU MIREA. Herald of MSTU MIREA. 2013. No 1. P. 125–128. (In Russ.).
8. Kalachevskiy B. A., Yakovlev A. B. ZhRDU kak ispolnitel’nyy organ sistemy upravleniya dvizheniyem [The liquid rocket engine as an executive organ of a control system of movement] // Polet. Obshcherossiyskiy nauchno-tekhnicheskiy zhurnal. All-Russian Scientific-Technical Journal «Polyot» («Flight»). 2012. No. 5. P. 46–51. (In Russ.).
9. Lebedinskiy E. N., Mosolov S. V., Kalmykov G. P. [et al.]. Komp’yuternyye modeli zhidkostnykh raketnykh dvigateley [Computer models of liquid-propellant rocket engines]. Moscow: Mashinostroyeniye Publ., 2009. 375 p. ISBN 978-5-217-03449-9. (In Russ.).
10. Kyzmenko I. A., Yakovlev A. B. Raschet staticheskoj harakteristiki sistemy podachi unitarnogo topliva v gazogenerator zhidkostnogo raketnogo dvigatelya [Computation of static characteristic of the fuel supply system to the unitary gas generator of a liquid rocket engine] // Omskiy nauchnyy vestnik. Omsk Scientific Bulletin. 2018. No. 6 (162). P. 15–18. DOI: 10.25206/1813-8225-2018-162-15-18. (In Russ.).
11. Volkov E. B., Syritsyn T. A., Mazing G. Yu. Statika i dinamika raketnykh dvigatel’nykh ustanovok. Kniga II. Dinamika [Statics and dynamics of rocket propulsion systems. Book II. Dynamics]. Moscow: Mashinostroyeniye Publ., 1978. 320 p. (In Russ.).
12. Belyayev E. N., Chvanov V. K., Chervakov V. V. Matematicheskoye modelirovaniye rabochego protsessa zhidkostnykh raketnykh dvigateley [Mathematical modeling of liquid rocket engines working process]. Moscow, 1999. 228 p. ISBN 5-7035-2221-8. (In Russ.).
13. Karimi H., Mohammadi R., Taheri E. E. Dynamic Simulation and Parametric Study of a Liquid Propellant Engine // 2007 3rd International Conference on Recent Advances in Space Technologies. Istanbul, 2007. P. 219–224. DOI: 10.1109/RAST.2007.4283980. (In Engl.)
14. Hetem A., Miraglia J., Burian R. [et al.]. Numerical Simulation of Liquid Propellant Rocket Engines // 2011 Proceedings of the 34th International Convention MIPRO. Opatija, 2011. P. 930–934. (In Engl.)
15. Belyayev E. N., Kolomentsev A. I., Nasimento L. B., Nazarov V. P. Vliyaniye konstruktivnykh parametrov regulyatora raskhoda na ego staticheskiye i dinamicheskiye kharakteristiki [Influence of design parameters of a flow regulator on its static and dynamic characteristics] // Vestnik Sibirskogo gosudarstvennogo aerokosmicheskogo universiteta im. akademika M. F. Reshetneva. Vestnik Sibirskogo gosudarstvennogo aerokosmicheskogo universiteta im. akademika M. F. Reshetneva. 2014. No. 1 (53). P. 109–113. (In Russ.).
16. Kalachevskiy B. A., Yakovlev A. B. Modelirovanie processov, proiskhodyashchih v gazogeneratore, rabotayushchem na unitarnom toplive [Modeling of the Processes in Gas Generator Working on Unicomponent Fuel] // Omskiy nauchnyy vestnik. Omsk Scientific Bulletin. 2014. No. 2 (130). P. 48–52. (In Russ.).
Review
For citations:
Yakovlev A.B. Development of mathematical model of processes in gas generator with unitary fuel for powering turbine of liquid rocket engine. Omsk Scientific Bulletin. Series Aviation-Rocket and Power Engineering. 2023;7(3):82-88. (In Russ.) https://doi.org/10.25206/2588-0373-2023-7-3-82-88. EDN: TWJQSQ
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