Abstract:
This paper addresses problems of mathematical modeling of heat exchange processes in
the pre-nozzle volume of a solid propellant rocket engine with a charge with starlike crosssection
and a recessed hinged nozzle. Methods of mathematical modeling are used to solve
the quasi-stationary spatial conjugate problem of heat exchange. An analysis is made of the
influence of RANS turbulence models on the flow structure in the flow channels of the engine
and on the computed heat flow distributions over the surface of the recessed nozzle. Methods
of mathematical modeling are used to solve the quasi-stationary spatial conjugate problem of
heat exchange. Results of validation of RANS turbulence models are presented using well-known
experimental data. A comparison of numerical and experimental distributions of the heat-transfer
coefficient over the inlet surface of the recessed nozzle for the engine with a cylindrical channel
charge is made for a primary choice of turbulence models providing a qualitative agreement
between calculated and experimental data. By analyzing the results of numerical modeling
of the conjugate problem of heat exchange in the combustion chamber of the solid propellant
engine with a starlike channel, it is shown that the SST k−ω turbulence model provides local
heat-transfer coefficient distributions that are particularly close to the experimental data.
\Bibitem{Che22}
\by A. A. Chernova
\paper Validation of RANS Turbulence Models
for the Conjugate Heat Exchange Problem
\jour Rus. J. Nonlin. Dyn.
\yr 2022
\vol 18
\issue 1
\pages 61--82
\mathnet{http://mi.mathnet.ru/nd779}
\crossref{https://doi.org/10.20537/nd220105}
\mathscinet{http://mathscinet.ams.org/mathscinet-getitem?mr=4403286}
\scopus{https://www.scopus.com/record/display.url?origin=inward&eid=2-s2.0-85130998793}
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https://www.mathnet.ru/eng/nd779
https://www.mathnet.ru/eng/nd/v18/i1/p61
This publication is cited in the following 1 articles:
Anna A. Zubko, Oleg A. Pashkov, Ivan M. Platonov, “Influence of the chemical kinetics model on aerodynamic characteristics of a plane plate in a high-speed air flow”, CPM, 26:4 (2024), 471