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Publications in Math-Net.Ru |
Citations |
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2021 |
1. |
D. S. Kononov, V. Yu. Gidaspov, S. V. Strijhak, “Simplified kinetic models of methane combustion to expand the capabilities of the openfoam package and physicochemical libraries”, Proceedings of ISP RAS, 33:6 (2021), 228–240 |
2. |
V. Yu. Gidaspov, M. D. Zyong, N. S. Severina, “Numerical stduy of the effect of gas nonideality on shock wave focusing in a channel with a hemispherical end”, TVT, 59:5 (2021), 730–736 ; High Temperature, 60:1, Suppl. 2 (2022), S223–S229 |
3. |
V. Yu. Gidaspov, A. Yu. Morozov, D. L. Reviznikov, “Adaptive interpolation algorithm using TT-decomposition for modeling dynamical systems with interval parameters”, Zh. Vychisl. Mat. Mat. Fiz., 61:9 (2021), 1416–1430 ; Comput. Math. Math. Phys., 61:9 (2021), 1387–1400 |
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2020 |
4. |
V. Yu. Gidaspov, D. S. Kononov, N. S. Severina, “Simulation of the ignition and detonation of methane–air mixtures behind a reflected shock wave”, TVT, 58:6 (2020), 909–914 ; High Temperature, 58:6 (2020), 846–851 |
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2019 |
5. |
V. K. Abgaryan, V. Yu. Gidaspov, A. B. Nadiradze, A. A. Semenov, “Ion–electron recombination and heat fluxes in high-frequency ion thrusters”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 45:4 (2019), 3–5 ; Tech. Phys. Lett., 45:2 (2019), 123–125 |
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6. |
V. Yu. Gidaspov, N. S. Severina, “Modeling of detonation of metal-gas combustible mixtures in high-speed flow behind a shock wave”, TVT, 57:4 (2019), 560–571 ; High Temperature, 57:4 (2019), 514–524 |
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2018 |
7. |
A. Yu. Morozov, D. L. Reviznikov, V. Yu. Gidaspov, “kd-Tree based adaptive interpolation algorithm for chemical kinetics problems with interval parameters”, Matem. Mod., 30:12 (2018), 129–144 ; Math. Models Comput. Simul., 11:4 (2019), 622–633 |
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8. |
V. Yu. Gidaspov, O. A. Moskalenko, N. S. Severina, “Numerical study of the influence of water droplets on the structure of a detonation wave in a hydrogen–air fuel mixture”, TVT, 56:5 (2018), 782–788 ; High Temperature, 56:5 (2018), 751–757 |
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2017 |
9. |
V. Yu. Gidaspov, N. S. Severina, “Numeric simulation of the detonation of a propane-air mixture, taking irreversible chemical reactions into account”, TVT, 55:5 (2017), 795–799 ; High Temperature, 55:5 (2017), 777–781 |
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2016 |
10. |
V. Yu. Gidaspov, V. K. Golubev, N. S. Severina, “A software package for simulation of unsteady flows of the reacting gas in the channel”, Vestnik YuUrGU. Ser. Mat. Model. Progr., 9:3 (2016), 94–104 |
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2015 |
11. |
V. Yu. Gidaspov, N. S. Severina, “Numerical simulation of the fine structure of a cylindrical detonation wave in a hydrogen–air combustible mixture”, TVT, 53:4 (2015), 556–560 ; High Temperature, 53:4 (2015), 526–530 |
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2013 |
12. |
V. Yu. Gidaspov, N. S. Severina, “Numerical simulation of experiments to determine ignition delays behind incident shock wave”, Fizika Goreniya i Vzryva, 49:4 (2013), 31–40 ; Combustion, Explosion and Shock Waves, 49:4 (2013), 409–417 |
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2009 |
13. |
V. Ju. Gidaspov, S. A. Losev, N. S. Severina, “The nonequilibrium kinetics on the oxygen dissociation behind shock wave front”, Matem. Mod., 21:9 (2009), 3–15 ; Math. Models Comput. Simul., 2:2 (2010), 211–221 |
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2007 |
14. |
V. A. Volkov, V. N. Gavriliouk, V. Yu. Gidaspov, A. V. Khokhlov, “Numerical simulation of external hypersonic equilibrium air flows”, Matem. Mod., 19:12 (2007), 70–80 |
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2006 |
15. |
V. Yu. Gidaspov, “Computational algorithm of the rieman problem solution in equilibrium reacting gas”, Matem. Mod., 18:8 (2006), 64–76 |
3
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16. |
E. V. Astrakhantseva, V. Yu. Gidaspov, U. G. Pirumov, D. L. Reviznikov, “Numerical simulation of hemodynamics in arterial tree.
Investigation of vessel compression influence on flow parameters”, Matem. Mod., 18:8 (2006), 25–36 |
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2005 |
17. |
E. V. Astrakhantseva, V. Yu. Gidaspov, D. L. Reviznikov, “Mathematical modelling of hemodynamics of large blood vessels”, Matem. Mod., 17:8 (2005), 61–80 |
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18. |
V. A. Volkov, V. N. Gavriliouk, V. Yu. Gidaspov, M. M. Makarov, A. N. Pavlov, V. Yu. Strel'tsov, A. V. Khokhlov, “Numerical simulation of chemically reacting gas-droplet mixtures for combustion chambers of propulsion engines”, Matem. Mod., 17:8 (2005), 46–60 |
2
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2004 |
19. |
V. Yu. Gidaspov, V. Yu. Strel'tsov, “Investigation of the dispersed water droplets effect on ignition and detonation of hydrogen-air mixture”, Matem. Mod., 16:6 (2004), 123–126 |
1
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20. |
V. Yu. Gidaspov, I. E. Ivanov, I. A. Kryukov, I. M. Naboko, V. A. Petukhov, V. Yu. Strel'tsov, “Investigation of buster waves moves in cumulating cavity”, Matem. Mod., 16:6 (2004), 118–122 |
1
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2003 |
21. |
V. Yu. Gidaspov, I. E. Ivanov, I. A. Kryukov, V. Yu. Strel'tsov, “Study of unsteady nonequilibrium processes in acoustic Hartman resonator”, Matem. Mod., 15:6 (2003), 41–47 |
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1999 |
22. |
N. V. Bezmenova, S. A. Shustov, V. Yu. Gidaspov, I. E. Ivanov, “Modelling the products of combustion flow in small thrust jet engine nozzles”, Matem. Mod., 11:6 (1999), 45–51 |
23. |
V. A. Volkov, V. Yu. Gidaspov, V. Yu. Strel'tsov, “Numerical simulation of reacting gas mixtures flows behind reflected shock waves”, Matem. Mod., 11:2 (1999), 74–80 |
1
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24. |
V. Yu. Gidaspov, A. A. Karpov, “Numerical research of aerosol dynamics in the problem of upper atmosphere contamination”, Matem. Mod., 11:2 (1999), 65–73 |
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1998 |
25. |
U. G. Pirumov, V. Yu. Gidaspov, A. A. Danielyan, I. E. Ivanov, I. A. Kryukov, A. V. Muslaev, “Numerical analysis of two-phase flow in gas-dynamic filter”, Matem. Mod., 10:11 (1998), 19–28 |
26. |
V. A. Volkov, V. Yu. Gidaspov, U. G. Pirumov, V. Yu. Strel'tsov, “Numerical simulation of flows of reacting gas-droplet and gas mixtures in methanol ignition experiments”, TVT, 36:3 (1998), 424–434 ; High Temperature, 36:3 (1998), 401–411 |
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1996 |
27. |
V. A. Volkov, V. Yu. Gidaspov, A. N. Kozelko, U. G. Pirumov, “Marching multy-grid algorithm for the calculation of supersonic steady gas flows on natural-adapted grids”, Matem. Mod., 8:6 (1996), 121–127 |
3
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28. |
A. V. Vinogradov, V. A. Volkov, V. Yu. Gidaspov, A. V. Muslaev, P. V. Rozovski, “Calculation method for unsteady reacting flows with strong and weak discontinuities tracking”, Matem. Mod., 8:3 (1996), 79–90 |
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