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Russian Journal of Nonlinear Dynamics, 2024, Volume 20, Number 3, Pages 361–369
DOI: https://doi.org/10.20537/nd240803
(Mi nd899)
 

Direct Numerical Simulation of Supersonic Gas Flow Through a Circular Cylindrical Channel

A. M. Lipanova, S. A. Karskanovb

a Keldysh Institute of Applied Mathematics, Miusskaya pl. 4, Moscow, 125047 Russia
b Udmurt Federal Research Center UB RAS, ul. T. Baramzinoi 34, Izhevsk, 426067 Russia
References:
Abstract: The results of the theoretical solution of the problem of braking a supersonic flow in a round pipe based on direct numerical simulation by integrating the Navier – Stokes equations without the use of additional models and empirical constants are shown. Shaded maps of density distribu- tion depending on flow parameters are presented. The flow consists of successive rhombus-shaped shock waves distributed along the entire length of the channel. It is determined that the size of x-shaped structures depends on the flow parameters. At a lower Mach number, the rhombuses have a smaller size and, accordingly, their number increases along the length of the channel. The Reynolds number also affects the size of structures, however, it is less pronounced. With a lower Reynolds number, x-shaped structures have a smaller size. It is shown that over time the flow tends to a stationary state.
Keywords: direct numerical simulation, Navier – Stokes equations, supersonic flows, high-order approximation, Reynolds number, Mach number
Received: 06.06.2024
Accepted: 07.07.2024
Document Type: Article
MSC: 76F65
Language: English
Citation: A. M. Lipanov, S. A. Karskanov, “Direct Numerical Simulation of Supersonic Gas Flow Through a Circular Cylindrical Channel”, Rus. J. Nonlin. Dyn., 20:3 (2024), 361–369
Citation in format AMSBIB
\Bibitem{LipKar24}
\by A. M. Lipanov, S. A. Karskanov
\paper Direct Numerical Simulation of Supersonic Gas Flow Through a Circular Cylindrical Channel
\jour Rus. J. Nonlin. Dyn.
\yr 2024
\vol 20
\issue 3
\pages 361--369
\mathnet{http://mi.mathnet.ru/nd899}
\crossref{https://doi.org/10.20537/nd240803}
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