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Publications in Math-Net.Ru |
Citations |
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2025 |
| 1. |
V. V. Koledin, I. K. Gimaltdinov, “Instability of a charged bubble with a gas soluble in the liquid”, Zhurnal Tekhnicheskoi Fiziki, 95:11 (2025), 2106–2112 |
| 2. |
A. T. Akhmetov, I. K. Gimaltdinov, R. F. Gizatullin, D. R. Bogdanov, M. A. Azamatov, “The influence of the membrane on the passage of a shock wave pulse in sand”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 51:24 (2025), 31–36 |
| 3. |
I. K. Gimaltdinov, I. G. Khusainov, “Evolution of waves in a porous medium when passing the boundary between bubbly and “pure” liquids saturating the porous medium”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 51:24 (2025), 25–30 |
| 4. |
O. Yu. Valiakhmetova, I. K. Gimaltdinov, “Numerical investigation of shock-wave pulse transmission from gas into a bubbly liquid-saturated porous medium”, Prikl. Mekh. Tekh. Fiz., 66:6 (2025), 138–149 ; J. Appl. Mech. Tech. Phys., 66:6 (2025), 1154–1163 |
| 5. |
I. K. Gimaltdinov, A. S. Rodionov, O. Yu. Valiakhmetova, “Numerical study of wave impulse propagation from a liquid into a porous medium saturated with bubbly liquid”, Prikl. Mekh. Tekh. Fiz., 66:3 (2025), 163–176 ; J. Appl. Mech. Tech. Phys., 66:3 (2025), 534–545 |
| 6. |
I. K. Gimaltdinov, A. S. Rodionov, R. F. Gizatullin, E. Yu. Kochanova, “The influence of bulk medium shielding on the dynamics of a shock wave impulse”, Sib. Zh. Ind. Mat., 28:3 (2025), 36–50 |
| 7. |
I. K. Gimaltdinov, V. V. Koledin, “Распространение малых возмущений во вскипающей дистиллированной воде, содержащей заряженные паровые пузырьки”, TVT, 63:5 (2025), 614–620 |
| 8. |
I. A. Chiglintsev, S. A. Lepikhin, A. S. Chiglintseva, I. K. Gimaltdinov, “Распространение волны давления в газожидкостной смеси, сопровождающееся гидратообразованием и дроблением пузырьков”, TVT, 63:4 (2025), 535–547 |
| 9. |
I. K. Gimaltdinov, V. V. Koledin, A. A. Nasyrov, I. A. Chiglintsev, “Об устойчивости паровых пузырьков с зарядом в перегретой жидкости”, TVT, 63:2 (2025), 266–276 |
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2024 |
| 10. |
I. K. Gimaltdinov, I. G. Khusainov, “Reflection of acoustic waves in bubble curtain water containing hydrate bubbles”, Prikl. Mekh. Tekh. Fiz., 65:4 (2024), 52–62 ; J. Appl. Mech. Tech. Phys., 65:4 (2024), 638–646 |
| 11. |
I. A. Chiglintsev, S. A. Lepikhin, I. K. Gimaltdinov, “Интенсификация гидратообразования при распространении слабой волны давления в пузырьковой жидкости”, TVT, 62:5 (2024), 713–721 |
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2023 |
| 12. |
I. K. Gimaltdinov, A. S. Rodionov, E. Yu. Kochanova, “Detonation of a gas-liquid mixture under wave interference on an inclined boundary”, Fizika Goreniya i Vzryva, 59:3 (2023), 36–43 ; Combustion, Explosion and Shock Waves, 59:3 (2023), 283–290 |
| 13. |
M. N. Galimzyanov, I. K. Gimaltdinov, E. Yu. Kochanova, “Interaction of a pressure wave in a cylindrical channel with a spherical bubble cluster”, Prikl. Mekh. Tekh. Fiz., 64:2 (2023), 96–104 ; J. Appl. Mech. Tech. Phys., 64:2 (2023), 258–265 |
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| 14. |
I. K. Gimaltdinov, S. A. Lepikhin, “On counteracting a detonation wave in a bubbly liquid using small-amplitude waves”, TVT, 61:6 (2023), 891–896 ; High Temperature, 61:6 (2023), 818–823 |
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| 15. |
I. M. Bayanov, I. K. Gimaltdinov, M. V. Stolpovskii, “Simulation of the combustion process of methane hydrate taking into account incomplete evaporation of released water during its dissociation”, TVT, 61:2 (2023), 251–257 ; High Temperature, 61:2 (2023), 229–234 |
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2022 |
| 16. |
A. T. Akhmetov, I. K. Gimaltdinov, M. A. Azamatov, A. F. Mukhametzyanov, D. R. Bogdanov, “Sounding of water-gas-saturated bulk media by rereflected waves immediately after the impact of a shock wave”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 48:1 (2022), 23–26 |
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| 17. |
L. F. Sitdikova, I. K. Gimaltdinov, “Reflection and refraction of sound waves at the interface between a bubbly liquid and a porous medium saturated with a bubbly liquid”, Prikl. Mekh. Tekh. Fiz., 63:5 (2022), 140–149 ; J. Appl. Mech. Tech. Phys., 63:5 (2022), 851–859 |
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| 18. |
I. K. Gimaltdinov, S. A. Lepikhin, “On the initiation of bubble detonation by small-amplitude waves”, TVT, 60:5 (2022), 715–724 ; High Temperature, 60:5 (2022), 652–661 |
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| 19. |
I. K. Gimaltdinov, A. S. Rodionov, E. Yu. Kochanova, “The dynamics of detonation waves at oblique incidence on the boundary of a bubble liquid”, TVT, 60:3 (2022), 421–427 ; High Temperature, 60:3 (2022), 379–384 |
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2021 |
| 20. |
I. K. Gimaltdinov, S. A. Lepikhin, “Study of postdetonation waves after the counter collision of detonation waves in a bubble liquid”, TVT, 59:2 (2021), 236–241 ; High Temperature, 59:2–6 (2021), 210–215 |
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| 21. |
L. F. Sitdikova, I. K. Gimaltdinov, “The problem of the propagation of acoustic waves in a porous environment saturated with bubble liquid”, Vestn. Yuzhno-Ural. Gos. Un-ta. Ser. Matem. Mekh. Fiz., 13:1 (2021), 59–66 |
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2019 |
| 22. |
V. Sh. Shagapov, E. V. Galiakbarova, I. K. Gimaltdinov, “On the theory of salt washout from water-oil emulsion with fresh water”, Prikl. Mekh. Tekh. Fiz., 60:4 (2019), 91–99 ; J. Appl. Mech. Tech. Phys., 60:4 (2019), 669–675 |
| 23. |
I. K. Gimaltdinov, S. A. Lepikhin, “Characteristics of the influence of phase sliding and initial pressure on the dynamics of detonation waves in bubbly liquid”, TVT, 57:3 (2019), 459–463 ; High Temperature, 57:3 (2019), 420–424 |
9
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| 24. |
S. R. Kildibaeva, I. K. Gimaltdinov, “Mathematical model of the submerged jet taking into account the influence of 3D flow of the ambient water”, Vestnik YuUrGU. Ser. Mat. Model. Progr., 12:1 (2019), 137–143 |
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2018 |
| 25. |
M. K. Khasanov, M. V. Stolpovskii, I. K. Gimaltdinov, “Modeling of gas hydrate formation upon injection of carbon oxide gas into a natural reservoir”, Prikl. Mekh. Tekh. Fiz., 59:3 (2018), 94–102 ; J. Appl. Mech. Tech. Phys., 59:3 (2018), 466–473 |
9
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| 26. |
I. K. Gimaltdinov, M. V. Stolpovskii, M. K. Khasanov, “Erratum to: “Recovery of methane from gas hydrates in a porous medium by injection of carbon dioxide””, J. Appl. Mech. Tech. Phys., 59:2 (2018), 386 |
| 27. |
I. K. Gimaltdinov, M. V. Stolpovskii, M. K. Khasanov, “Recovery of methane from gas hydrates in a porous medium by injection of carbon dioxide”, Prikl. Mekh. Tekh. Fiz., 59:1 (2018), 3–12 ; J. Appl. Mech. Tech. Phys., 59:1 (2018), 1–8 |
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2015 |
| 28. |
I. K. Gimaltdinov, R. R. Arslanbekov, “The impact postdetonation wave on a rigid wall”, Meždunar. nauč.-issled. žurn., 2015, no. 10-4(41), 20–22 |
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2014 |
| 29. |
I. K. Gimaltdinov, V. L. Dmitriev, L. F. Sitdikova, “Dynamics of Acoustic Waves in Porous Media Saturated with Gas-Vapor Mixture”, TVT, 52:4 (2014), 572–580 ; High Temperature, 52:4 (2014), 545–553 |
9
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| 30. |
I. K. Gimaltdinov, A. M. Kucher, “Detonation Waves in a Multicomponent Bubble Liquid”, TVT, 52:3 (2014), 423–428 ; High Temperature, 52:3 (2014), 412–417 |
16
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| 31. |
Ya. R. Bayazitova, I. K. Gimaltdinov, “Sound waves dynamics in a tube with elastic walls filled with bubbly liquid”, Vestn. Yuzhno-Ural. Gos. Un-ta. Ser. Matem. Mekh. Fiz., 6:4 (2014), 13–19 |
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2011 |
| 32. |
V. Sh. Shagapov, M. K. Khasanov, I. K. Gimaltdinov, M. V. Stolpovskii, “Numerical modeling of formation of a gas hydrate in a finite-length porous bed purged by a gas”, Prikl. Mekh. Tekh. Fiz., 52:4 (2011), 116–126 ; J. Appl. Mech. Tech. Phys., 52:4 (2011), 599–607 |
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2010 |
| 33. |
S. A. Lepikhin, M. N. Galimzyanov, I. K. Gimaltdinov, “Initiation of detonation waves in channels of variable cross section filled with liquid with combustible gas bubbles”, TVT, 48:2 (2010), 234–240 ; High Temperature, 48:2 (2010), 215–221 |
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2009 |
| 34. |
V. Sh. Shagapov, I. K. Gimaltdinov, A. R. Bayazitova, D. S. Spevak, “Propagation of detonation waves along a tubular bubble cluster in liquid”, TVT, 47:3 (2009), 448–456 ; High Temperature, 47:3 (2009), 424–431 |
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2002 |
| 35. |
V. Sh. Shagapov, I. K. Gimaltdinov, A. V. Yudin, “Nonlinear Oscillation of a Bubble Cluster in a Spherical Resonator”, TVT, 40:2 (2002), 284–291 ; High Temperature, 40:2 (2002), 256–263 |
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| 36. |
V. V. Koledin, I. K. Gimaltdinov, “Об устойчивости заряженного парогазового пузырька в линейном приближении”, TVT, 0 |
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