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[1] Chetverushkin B. N., Kineticheskie skhemy i kvazigazodinamicheskaya sistema uravnenii, Maks Press, M., 2004
[2] Tsutahara M., Takaoka N., Kakaoka N., “Lattice gas and lattice Boltzmann methods”, New Meth. Comput. Fluid Dynamics, Corona Publs., Tokyo, 1999
[3] Succi S., The lattice Boltzmann equations for fluid dynamics and beyond, Clarendon Press, Oxford, 2001 | MR | Zbl
[4] Antonov M. A., Chetverushkin B. N., Shilnikov E. V., “Using massive parallel computer system tor the direct modeling of multiscale structures in the separated flows”, Proc. IV Internat. Conf. “ECCOMAS-98” Athens, v. 2, Wiley Sons, Chichester, 1998, 222–225
[5] Chetverushkin B. N., Shilnikov E. V., Shoomkov M. A., “Simulation of the 3D unsteady viscous gas flow around cavities using massively parallel computers”, CD Proc. European Congress on Comput. Meth. in Appl. Sci. and Eng. (September 11–14, 2000), Barcelona, Spain, 2000
[6] Shilnikov E. B., Shumkov M. A., “Modelirovanie trekhmernykh nestatsionarnykh techenii gaza na MVS s raspredelennoi pamyatyu”, Matem. modelirovanie, 13:4 (2001), 35–46
[7] Chetverushkin B. N., Gasilov V. A., Polyakov S V. i dr., “Paket prikladnykh programm GIMM dlya resheniya zadach gidrodinamiki na mnogoprotsessornykh vychislitelnykh sistemakh”, Matem. modelirovanie, 17:6 (2005), 58–74
[8] Chetverushkin B. N., “Modelirovanie industrialnykh zadach na vysokoproizvoditelnykh mnogoprotsessornykh vychislitelnykh sistemakh”, Avtomatika i telemekhan., 2007, no. 5, 193–205 | MR | Zbl
[9] Cebral I. R., “Collaborative visualization for parallel multidisciplinary applications”, Parallel Comput. Fluid Dynamics. Recent Developments and Advanced Using, Elsevier, Amsterdam, 1998, 659–666
[10] Yakobovskii M. B., “Obrabotka setochnykh dannykh na raspredelennykh vychislitelnykh sistemakh. Vopr. atomnoi nauki i tekhniki”, Izv. RAN. Ser. “Matem. modelirovanie fiz. protsessov”, 2004, no. 2, 40–53
[11] Chetverushkin B. N., Shilnikov E. V., “Kinetical-consistent finite difference schemes and quasigasdynamic equation system as the physical model for gas dynamic flow description”, Proc. III Asian Comput. Fluid Dynamics Conf., v. II, Bangalore, 1998, 243–248
[12] Shilnikov E. V., “Postroenie raznostnykh skhem na vstroennykh setkakh”, Sb. dokl. VI nauch. konf. MGTU “Stankin” i “Uchebno-nauchnogo Tsentra MGTU ‘`Stankin” – IMM RAN’' (28–29 aprelya 2003), Yanus-K, ITs MGTU “Stankin”, M., 2003, 64–75
[13] Dorodnitsyn L. V., Chetverushkin B. N., “Kineticheski soglasovannye skhemy dlya modelirovaniya techenii vyazkogo gaza”, Zh. vychisl. matem. i matem. fiz., 40:12 (2000), 1875–1889 | MR | Zbl
[14] Hirsh C., Numerical computation of internal and external flows, v. 1, Fundamentals of numerical discretization, John Wiley Sons. A. Wiley Intersci. Publ., New York, 1988
[15] Lin D. A., Einav S., Rody W., Park.J.-H., “A laser-Doppler velocimetry study of ensemble-averaged characteristics of the turbulent near wake of a square cylinger”, J. Fluid. Mech., 304 (1995), 285–319 | DOI
[16] Bosch G., Rodi W., “Simulation of vortex shedding past a square cylinder with different turbulence models”, Internat. J. Numer. Meth. Fluids, 28 (1998), 601–616 | 3.0.CO;2-F class='badge bg-secondary rounded-pill ref-badge extid-badge'>DOI | MR | Zbl