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Publications in Math-Net.Ru |
Citations |
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2010 |
1. |
G. A. Tarnavsky, “Cloud computing technologies in mathematical simulation”, Informatsionnye Tekhnologii i Vychslitel'nye Sistemy, 2010, no. 4, 66–76 |
2. |
G. A. Tarnavskii, “Cloud computing in Internet: a brief excursus into the Computer Simulation Center”, Model. Anal. Inform. Sist., 17:2 (2010), 112–121 |
3. |
G. A. Tarnavskii, “A special doping regime in silicon wafer nanocolumns”, Num. Meth. Prog., 11:3 (2010), 210–214 |
4. |
G. A. Tarnavskii, “Remote computer simulation of shock-wave structures in
hypersonic gas flows: “workplace as a service” cloud
computing technology”, Num. Meth. Prog., 11:1 (2010), 1–25 |
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2009 |
5. |
G. A. Tarnavskii, “A mathematical simulation of implantation processes of doping donor and acceptor impurities in a silicon wafer”, Num. Meth. Prog., 10:3 (2009), 363–370 |
6. |
G. A. Tarnavskii, V. S. Anishchik, “NanoMod toolkit for the computer-aided design of nanostructured semiconductor materials”, Num. Meth. Prog., 10:1 (2009), 34–50 |
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2008 |
7. |
G. A. Tarnavskii, A. V. Aliev, “Specific features of high-speed flight aerodynamics:
computer simulation of hypersonic flow around the head of an object”, Num. Meth. Prog., 9:4 (2008), 371–394 |
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2007 |
8. |
A. V. Aliev, G. A. Tarnavskii, “The hierarchical SPH-method for mathematical simulation in gravitational gas dynamics”, Sib. Èlektron. Mat. Izv., 4 (2007), 376–434 |
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9. |
G. A. Tarnavskii, A. V. Aliev, A. G. Tarnavskii, “Mathematical modeling of formation of doping nanostructures in basic material (nanotechnologies for microelectronics)”, Sib. Zh. Vychisl. Mat., 10:4 (2007), 401–416 |
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10. |
G. A. Tarnavskii, A. V. Aliev, “Mathematical simulation: principal segments, their peculiarities, and problems”, Num. Meth. Prog., 8:3 (2007), 297–310 |
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2005 |
11. |
G. A. Tarnavskii, “Changes in the type of the shock-wave structure in high-velocity flows”, Prikl. Mekh. Tekh. Fiz., 46:2 (2005), 23–32 ; J. Appl. Mech. Tech. Phys., 46:2 (2005), 168–175 |
12. |
G. A. Tarnavskii, “Shock-wave modes of flow at the inlet to the diffuser of a hypersonic scramjet engine: The effect of flight altitude and velocity”, TVT, 43:1 (2005), 57–70 ; High Temperature, 43:1 (2005), 58–72 |
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13. |
G. A. Tarnavskii, A. G. Tarnavskii, K. V. Gilev, “Information-computing Internet-center "Aeromechanics". First line: the "Shock" program complex”, Num. Meth. Prog., 6:2 (2005), 27–48 |
14. |
G. A. Tarnavskii, A. G. Tarnavskii, “Мультипроцессорное компьютерное моделирование в гравитационной газовой динамике”, Num. Meth. Prog., 6:1 (2005), 71–87 |
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2004 |
15. |
G. A. Tarnavskii, A. G. Tarnavskii, “Shockwave structures in real gases: transition between shock interactions of different types in nonuniqueness solution regions”, Num. Meth. Prog., 5:1 (2004), 219–228 |
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2003 |
16. |
G. A. Tarnavskii, S. M. Aul'chenko, V. A. Vshivkov, “Mathematical simulation of unsteady three-dimensional processes in the space gas dynamics”, Num. Meth. Prog., 4:1 (2003), 294–322 |
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17. |
G. A. Tarnavskii, “Nonuniqueness of shockwave structures in real gases: the Mach and/or regular reflection”, Num. Meth. Prog., 4:1 (2003), 258–277 |
18. |
G. A. Tarnavskii, V. D. Korneev, D. A. Vayner, N. M. Pokryshkina, A. Yu. Slyunyaev, A. V. Tanaseychuk, A. G. Tarnavskii, “Computing system “Potok-3”: experience of program complex parallelization.
Part 1. Ideology of multisequencing”, Num. Meth. Prog., 4:1 (2003), 33–44 |
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2002 |
19. |
G. A. Tarnavskii, “Shock waves in real gases with different specific heat ratios ahead of and behind shock fronts”, Num. Meth. Prog., 3:1 (2002), 222–236 |
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2001 |
20. |
G. A. Tarnavskii, S. I. Shpak, M. S. Obrecht, “Boron implanted in silicon: Segregation at angular configurations of the silicon/silicon dioxide oxidation boundary”, Pis'ma v Zh. Èksper. Teoret. Fiz., 73:9 (2001), 536–541 ; JETP Letters, 73:9 (2001), 474–478 |
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21. |
G. A. Tarnavskii, S. I. Shpak, “Methods of calculating the effective exponent of adiabat under computer simulation of hypersound flows”, Sib. Zh. Ind. Mat., 4:1 (2001), 177–197 |
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22. |
A. L. Alexandrov, G. A. Tarnavskii, S. I. Shpak, A. I. Gulidov, M. S. Obrecht, “Numerical simulation for the problem of dynamics of oxide film growth in
semiconductor substrates on the basis of geometrical approach and the
Deal-Grove method”, Num. Meth. Prog., 2:1 (2001), 92–111 |
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23. |
G. A. Tarnavskii, S. I. Shpak, M. S. Obrecht, “Numerical modeling and computer algorithm for the process of segregation of alloy impurities at the boundary of an
oxidation wave in semiconductor substrates”, Num. Meth. Prog., 2:1 (2001), 12–26 |
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24. |
V. F. Volkov, G. A. Tarnavskii, “Broken symmetry and hysteresis in steady-state and quasi-steady solutions to Euler and Navier–Stokes equations”, Zh. Vychisl. Mat. Mat. Fiz., 41:11 (2001), 1742–1750 ; Comput. Math. Math. Phys., 41:11 (2001), 1659–1666 |
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2000 |
25. |
G. A. Tarnavskii, S. I. Shpak, “Parallel algorithms for solving tridiagonal systems of linear equations (the three-dimensional case)”, Num. Meth. Prog., 1:1 (2000), 19–27 |
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1999 |
26. |
P. K. Tret'yakov, A. F. Garanin, G. A. Tarnavskii, S. I. Shpak, V. I. Yakovlev, “Information system “Fakel” (gas dynamics of separation flows with mass influx and combustion)”, Sib. Zh. Ind. Mat., 2:1 (1999), 171–184 |
27. |
G. A. Tarnavskii, S. I. Shpak, “Nonstationary supersonic flow around blunted bodies with energy influx in a running flow: Advancing of the first pulse”, Sib. Zh. Ind. Mat., 2:1 (1999), 167–170 |
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1998 |
28. |
G. A. Tarnavskii, S. I. Shpak, “The numerical modeling problems of supersonic laminar-turbulent flow around alone bodies”, Matem. Mod., 10:6 (1998), 53–74 |
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29. |
G. A. Tarnavskii, S. I. Shpak, “Comparison analysis of velocity and temperature boundary layers and their evolution to viscous and heat streets of the near wake”, Sib. Zh. Ind. Mat., 1:1 (1998), 174–181 |
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1980 |
30. |
V. M. Kovenya, G. A. Tarnavskii, N. N. Yanenko, “Implicit difference scheme for a numerical solution of three-dimensional equations of gas dynamics”, Zh. Vychisl. Mat. Mat. Fiz., 20:6 (1980), 1465–1482 ; U.S.S.R. Comput. Math. Math. Phys., 20:6 (1980), 100–116 |
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