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Publications in Math-Net.Ru |
Citations |
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2025 |
| 1. |
V. N. Chuvil’deev, M. Yu. Gryaznov, S. V. Shotin, A. V. Nokhrin, K. V. Likhnitskiy, Ya. S. Shadrina, M. K. Chegurov, V. I. Kopylov, A. A. Bobrov, “Superplasticity of ultrafine-grained Al–Mg–Sc–Zr alloys with different Mg, Sc, Zr content”, Zhurnal Tekhnicheskoi Fiziki, 95:12 (2025), 2427–2446 |
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2024 |
| 2. |
M. Yu. Gryaznov, S. V. Shotin, V. N. Chuvil’deev, A. V. Semenycheva, A. N. Sysoev, A. V. Piskunov, “Improvement physical and mechanical properties of Ti-6Al-4V alloy processed by selective laser melting”, Zhurnal Tekhnicheskoi Fiziki, 94:2 (2024), 240–247 |
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2023 |
| 3. |
M. Yu. Gryaznov, S. V. Shotin, V. N. Chuvil’deev, A. N. Sysoev, N. V. Melekhin, A. V. Piskunov, N. V. Sakharov, A. V. Semenycheva, A. A. Murashov, “Improving the physical and mechanical characteristics of unalloyed titanium VT1-0 and studying the effect of selective laser melting parameters”, Zhurnal Tekhnicheskoi Fiziki, 93:2 (2023), 241–248 |
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2022 |
| 4. |
M. S. Boldin, A. A. Popov, A. A. Murashov, N. V. Sakharov, S. V. Shotin, A. V. Nokhrin, V. N. Chuvil’deev, N. Yu. Tabachkova, K. E. Smetanina, “Study of the effect of a small addition of ZrO$_2$ on the density and grain growth of alumina”, Zhurnal Tekhnicheskoi Fiziki, 92:11 (2022), 1687–1698 |
| 5. |
N. V. Melekhin, A. M. Bragov, N. N. Berendeev, V. N. Chuvil’deev, V. V. Balandin, “A method of studying the flow of miniature cumulative jet of copper”, Zhurnal Tekhnicheskoi Fiziki, 92:11 (2022), 1671–1677 |
| 6. |
M. S. Boldin, A. A. Popov, A. A. Murashov, N. V. Sakharov, S. V. Shotin, A. V. Nokhrin, V. N. Chuvil’deev, K. E. Smetanina, N. Yu. Tabachkova, “Spark plasma sintering of Al$_2$O$_3$–SiC ceramics. Study of the microstructure and properties”, Zhurnal Tekhnicheskoi Fiziki, 92:10 (2022), 1571–1581 |
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2020 |
| 7. |
A. M. Bragov, V. N. Chuvil’deev, N. V. Melekhin, M. S. Boldin, V. V. Balandin, A. V. Nokhrin, A. A. Popov, “Experimental study of dynamic strength of aluminum oxide based fine-grained ceramics obtained by spark plasma sintering”, Prikl. Mekh. Tekh. Fiz., 61:3 (2020), 207–214 ; J. Appl. Mech. Tech. Phys., 61:3 (2020), 494–500 |
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2017 |
| 8. |
V. N. Chuvil’deev, A. V. Nokhrin, O. È. Pirozhnikova, M. Yu. Gryaznov, Yu. G. Lopatin, M. M. Myshlyaev, V. I. Kopylov, “Changes in the diffusion properties of nonequilibrium grain boundaries upon recrystallization and superplastic deformation of submicrocrystalline metals and alloys”, Fizika Tverdogo Tela, 59:8 (2017), 1561–1569 ; Phys. Solid State, 59:8 (2017), 1584–1593 |
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| 9. |
V. N. Chuvil’deev, A. V. Semenycheva, “Model of grain-boundary self-diffusion in $\alpha$- and $\beta$-phases of titanium and zirconium”, Fizika Tverdogo Tela, 59:1 (2017), 5–12 ; Phys. Solid State, 59:1 (2017), 1–8 |
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| 10. |
V. N. Chuvil’deev, V. I. Kopylov, A. V. Nokhrin, A. M. Bakhmet'ev, N. G. Sandler, N. A. Kozlova, P. V. Tryaev, N. Yu. Tabachkova, A. S. Mikhailov, A. V. Ershova, M. Yu. Gryaznov, M. K. Chegurov, A. N. Sysoev, E. S. Smirnova, “Simultaneous increase in the strength, plasticity, and corrosion resistance of an ultrafine-grained Ti–4Al–2V pseudo-alpha-titanium alloy”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 43:10 (2017), 25–33 ; Tech. Phys. Lett., 43:5 (2017), 466–469 |
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2016 |
| 11. |
V. N. Chuvil’deev, E. S. Smirnova, “Phenomenological theory of bulk diffusion in metal oxides”, Fizika Tverdogo Tela, 58:7 (2016), 1436–1447 ; Phys. Solid State, 58:7 (2016), 1487–1499 |
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| 12. |
V. N. Chuvil’deev, V. I. Kopylov, A. V. Nokhrin, A. M. Bakhmet'ev, N. G. Sandler, P. V. Tryaev, N. A. Kozlova, N. Yu. Tabachkova, A. S. Mikhailov, M. K. Chegurov, E. S. Smirnova, “The effect of the local chemical composition of grain boundaries on the corrosion resistance of a titanium alloy”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 42:24 (2016), 24–32 ; Tech. Phys. Lett., 43:1 (2017), 5–8 |
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2015 |
| 13. |
V. N. Chuvil’deev, V. I. Kopylov, A. V. Nokhrin, Yu. G. Lopatin, N. A. Kozlova, N. Yu. Tabachkova, A. V. Semenycheva, E. S. Smirnova, M. Yu. Gryaznov, O. È. Pirozhnikova, “The effect of grain boundaries state on the thermal stability of a submicrocrystalline titanium alloy structure”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 41:11 (2015), 1–9 ; Tech. Phys. Lett., 41:6 (2015), 515–518 |
3
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| 14. |
V. N. Chuvil’deev, Yu. V. Blagoveshchenskii, M. S. Boldin, N. V. Sakharov, A. V. Nokhrin, N. V. Isaeva, S. V. Shotin, Yu. G. Lopatin, O. A. Belkin, E. S. Smirnova, “High-strength ultrafine-grained tungsten-carbide-based materials obtained by spark plasma sintering”, Pisma v Zhurnal Tekhnicheskoi Fiziki, 41:8 (2015), 86–94 ; Tech. Phys. Lett., 41:4 (2015), 397–400 |
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2011 |
| 15. |
V. N. Chuvil’deev, E. S. Smirnova, “Mechanisms of bulk diffusion at “high” and “low” temperatures”, Fizika Tverdogo Tela, 53:4 (2011), 727–732 ; Phys. Solid State, 53:4 (2011), 779–785 |
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2010 |
| 16. |
V. N. Chuvil’deev, A. V. Shchavleva, A. V. Nokhrin, O. È. Pirozhnikova, M. Yu. Gryaznov, Yu. G. Lopatin, A. N. Sysoev, N. V. Melekhin, N. V. Sakharov, V. I. Kopylov, M. M. Myshlyaev, “Influence of the grain size and structural state of grain boundaries on the parameter of low-temperature and high-rate superplasticity of nanocrystalline and microcrystalline alloys”, Fizika Tverdogo Tela, 52:5 (2010), 1026–1033 ; Phys. Solid State, 52:5 (2010), 1098–1106 |
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