Abstract:
In this paper, the system of equations of magnetic hydrodynamics (MHD) is considered. The exact solutions found describe fluid flows in a porous medium and are related to the development of a core simulator and are aimed at creating a domestic technology «digital deposit» and the tasks of controlling the parameters of incompressible fluid. The central problem associated with the use of computer technology is large-dimensional grid approximations and high-performance supercomputers with a large number of parallel microprocessors. Kinetic methods for solving differential equations and methods for «gluing» exact solutions on coarse grids are being developed as possible alternatives to large-dimensional grid approximations. A comparative analysis of the efficiency of computing systems allows us to conclude that it is necessary to develop the organization of calculations based on integer arithmetic in combination with universal approximate methods. A class of exact solutions of the Navier–Stokes system is proposed, describing three-dimensional flows for an incompressible fluid, as well as exact solutions of nonstationary three-dimensional magnetic hydrodynamics. These solutions are important for practical problems of controlled dynamics of mineralized fluids, as well as for creating test libraries for verification of approximate methods. A number of phenomena associated with the formation of macroscopic structures due to the high intensity of interaction of elements of spatially homogeneous systems, as well as their occurrence due to linear spatial transfer in spatially inhomogeneous systems, are highlighted. It is fundamental that the emergence of structures is a consequence of the discontinuity of operators in the norms of conservation laws. The most developed and universal is the theory of computational methods for linear problems. Therefore, from this point of view, the procedures of «immersion» of nonlinear problems into general linear classes by changing the initial dimension of the description and expanding the functional spaces are important. Identification of functional solutions with functions makes it possible to calculate integral averages of an unknown, but at the same time its nonlinear superpositions, generally speaking, are not weak limits of nonlinear superpositions of approximations of the method, i. e. there are functional solutions that are not generalized in the sense of S. L. Sobolev.
Keywords:
magnetohydrodynamics, exact solutions, computational methods of small dimension.
Citation:
V. B. Betelin, V. A. Galkin, “Mathematical and computational problems associated with the formation of structures in complex systems”, Computer Research and Modeling, 14:4 (2022), 805–815
\Bibitem{BetGal22}
\by V.~B.~Betelin, V.~A.~Galkin
\paper Mathematical and computational problems associated with the formation of structures in complex systems
\jour Computer Research and Modeling
\yr 2022
\vol 14
\issue 4
\pages 805--815
\mathnet{http://mi.mathnet.ru/crm1000}
\crossref{https://doi.org/10.20537/2076-7633-2022-14-4-805-815}
Linking options:
https://www.mathnet.ru/eng/crm1000
https://www.mathnet.ru/eng/crm/v14/i4/p805
This publication is cited in the following 5 articles:
T. V. Gavrilenko, V. A. Galkin, “Intuitivnye logicheskie sistemy i ikh prilozheniya v tekhnologiyakh iskusstvennogo intellekta”, Uspekhi kibernetiki, 5:1 (2024), 8–16
V. B. Betelin, V. A. Galkin, “Construction of an Artificial Neural Network for Solving the Incompressible Navier–Stokes Equations”, Dokl. Math., 2024
V. B. Betelin, V. A. Galkin, “On the construction of an artificial neural network for solving a system of equations Navier–Stokes in the case of incompressible fluid”, Doklady Rossijskoj akademii nauk. Matematika, informatika, processy upravleniâ, 517:1 (2024), 115
V. B. Betelin, “O vychislitelnom suverenitete”, Uspekhi kibernetiki, 4:2 (2023), 6–7
D. V. Gorbunov, T. V. Gavrilenko, “Matematicheskoe modelirovanie dinamicheskikh protsessov organizma cheloveka na osnove differentsialnykh uravnenii s razryvnoi pravoi chastyu”, Uspekhi kibernetiki, 4:1 (2023), 15–20