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Zhurnal Vychislitel'noi Matematiki i Matematicheskoi Fiziki, 2021, Volume 61, Number 2, Pages 281–302
DOI: https://doi.org/10.31857/S0044466921020113
(Mi zvmmf11200)
 

Mathematical physics

Numerical simulation of unsteady subsonic viscous gas flows based on high-order composite compact schemes

A. D. Savel'ev

Federal Research Center "Computer Science and Control" of Russian Academy of Sciences, Moscow
References:
Abstract: A family of high-order multioperator compact schemes for computation of viscous gas flows on curvilinear grids is considered. Depending on the number of operators used, the order of a scheme approximating the convective terms of the original equations can vary from the 6th to 22nd. The viscous terms and the metric coefficients of a generalized curvilinear coordinate system are approximated with the same order. An example of three schemes, including a five-operator one, which is the most computationally intensive in the described family, is used to examine their structure. The change in the approximation and dissipation properties of the schemes caused by an increase in their order is investigated. The schemes are used for comparative computations of subsonic gas flows based on the Euler and Navier–Stokes equations. Numerical results based on the 22nd-order scheme are presented for a viscous subsonic airfoil flow in a wide range of angles of attack and for an impermeable parachute canopy.
Key words: compact difference schemes, 22nd-order approximation, subsonic viscous gas flows, boundary layer separation, airfoil, parachute canopy.
Received: 20.05.2020
Revised: 28.08.2020
Accepted: 16.09.2020
English version:
Computational Mathematics and Mathematical Physics, 2021, Volume 61, Issue 2, Pages 267–287
DOI: https://doi.org/10.1134/S096554252102010X
Bibliographic databases:
Document Type: Article
UDC: 519.634
Language: Russian
Citation: A. D. Savel'ev, “Numerical simulation of unsteady subsonic viscous gas flows based on high-order composite compact schemes”, Zh. Vychisl. Mat. Mat. Fiz., 61:2 (2021), 281–302; Comput. Math. Math. Phys., 61:2 (2021), 267–287
Citation in format AMSBIB
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\jour Zh. Vychisl. Mat. Mat. Fiz.
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\issue 2
\pages 281--302
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\pages 267--287
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