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Matematicheskoe modelirovanie, 2022, Volume 34, Number 2, Pages 85–100
DOI: https://doi.org/10.20948/mm-2022-02-07
(Mi mm4356)
 

This article is cited in 3 scientific papers (total in 3 papers)

Regularized difference scheme for solving hydrodynamic problems

A. I. Sukhinova, A. E. Chistyakova, I. Y. Kuznetsovab, A. M. Atayana, A. V. Nikitinaa

a Don State Technical University
b Southern Federal University
References:
Abstract: The paper considers a three-dimensional hydrodynamic model of the movement of an aqueous medium, which includes the Navier – Stokes equations of motion, including the regularized continuity equation, taking into account the effect of the impurity on the density of the aquatic environment. The approximation of the equations for calculating the velocity field of the aquatic environment with respect to spatial variables was carried out on the basis of splitting schemes for physical processes taking into account the filling factors of control plots, which made it possible to take into account the complex geometry of the coastline and the bottom of the reservoir, as well as to improve the accuracy of modeling. Calculation of the pressure field using a regularizer in the continuity equation made it possible to increase the accuracy of modeling: in the developed model, pressure cannot propagate faster than the velocity of the shock front (in the linear approximation of the speed of sound). The application of this approach also makes it possible to reduce the computational complexity of solving grid equations for the problem of calculating pressure due to the presence of a diagonal dominance in the matrix of coefficients. Numerical experiments were carried out to simulate the movement of the aquatic environment in the estuary area and the process of mixing waters in the presence of a significant density gradient in the aquatic environment.
Keywords: model of hydrodynamics, continuity equation, regularization, Upwind Leapfrog difference scheme, Standard Leapfrog difference scheme.
Funding agency Grant number
Russian Science Foundation 21-71-20050
Received: 08.11.2021
Revised: 08.11.2021
Accepted: 06.12.2021
Bibliographic databases:
Document Type: Article
Language: Russian
Citation: A. I. Sukhinov, A. E. Chistyakov, I. Y. Kuznetsova, A. M. Atayan, A. V. Nikitina, “Regularized difference scheme for solving hydrodynamic problems”, Matem. Mod., 34:2 (2022), 85–100
Citation in format AMSBIB
\Bibitem{SukChiKuz22}
\by A.~I.~Sukhinov, A.~E.~Chistyakov, I.~Y.~Kuznetsova, A.~M.~Atayan, A.~V.~Nikitina
\paper Regularized difference scheme for solving hydrodynamic problems
\jour Matem. Mod.
\yr 2022
\vol 34
\issue 2
\pages 85--100
\mathnet{http://mi.mathnet.ru/mm4356}
\crossref{https://doi.org/10.20948/mm-2022-02-07}
\mathscinet{http://mathscinet.ams.org/mathscinet-getitem?mr=4375132}
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  • https://www.mathnet.ru/eng/mm4356
  • https://www.mathnet.ru/eng/mm/v34/i2/p85
  • This publication is cited in the following 3 articles:
    Citing articles in Google Scholar: Russian citations, English citations
    Related articles in Google Scholar: Russian articles, English articles
    Математическое моделирование
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    Full-text PDF :170
    References:53
    First page:17
     
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