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2-years impact-factor Math-Net.Ru of «Teplofizika vysokikh temperatur» journal, 2015
2-years impact-factor Math-Net.Ru of the journal in 2015 is calculated
as the number of citations in 2015 to the scientific papers published during
2013–2014.
The table below contains the list of citations in 2015 to the papers
published in 2013–2014. We take into account all citing publications
we found from different sources, mostly from references lists available
on Math-Net.Ru. Both original and translation versions are taken into account.
The impact factor Math-Net.Ru may change when new citations to a year
given are found.
| Year |
2-years impact-factor Math-Net.Ru |
Scientific papers |
Citations |
Citated papers |
Journal Self-citations |
| 2015 |
1.207 |
246 |
297 |
137 |
47.8% |
|
|
|
| N |
Citing pulication |
|
Cited paper |
|
| 1. |
A. K. Shuaibov, A. I. Minya, R. V. Gritsak, Z. T. Gomoki, “Kharakteristiki i parametry plazmy gazorazryadnoi UF–VUF-lampy na sisteme polos molekul khlorida argona i khlora”, TVT, 53:4 (2015), 500–505  |
→ |
Electrophysical parameters and composition of $\mathrm{HCl}$–$\mathrm{N}_2$ mixture plasmas A. M. Efremov, A. A. Davlyatshina, V. I. Svetsov TVT, 51:1 (2013), 6–12
|
|
| 2. |
A. V. Markov, Yu. P. Yulenets, “Nagrev gaza polimernogo materiala v nizkotemperaturnoi plazme vysokochastotnogo razryada”, TVT, 53:2 (2015), 169–173  |
→ |
Possibilities of application of plasma technologies to recycle organic-containing substances: Particularities of the processes in the arc chambers of plasma torches O. B. Vasileva, I. I. Kumkova, A. F. Rutberg, A. A. Safronov, V. N. Shiryaev TVT, 51:1 (2013), 36–40
|
| 3. |
O. B. Vasileva, I. I. Kumkova, V. E. Kuznetsov, A. F. Rutberg, A. A. Safronov, V. N. Shiryaev, “Vozmozhnosti primeneniya plazmennykh tekhnologii dlya pererabotki organosoderzhaschikh veschestv.
Vliyanie formy krivoi napryazheniya na rezhim raboty plazmotrona”, TVT, 53:4 (2015), 494–499  |
→ |
Possibilities of application of plasma technologies to recycle organic-containing substances: Particularities of the processes in the arc chambers of plasma torches O. B. Vasileva, I. I. Kumkova, A. F. Rutberg, A. A. Safronov, V. N. Shiryaev TVT, 51:1 (2013), 36–40
|
|
| 4. |
Iakovlev A., Bedrov D., Mueller M., “Surface Tension of Liquid Mercury: a Comparison of Density-Dependent and Density-Independent Force Fields”, Eur. Phys. J. B, 88:12 (2015), 323  |
→ |
Application of the embedded atom model to liquid mercury D. K. Belashchenko TVT, 51:1 (2013), 47–55
|
| 5. |
Ghatee M.H., Karimi H., Shekoohi Kh., “Structural, Mechanical and Thermodynamical Properties of Silver Amalgam Filler: a Monte Carlo Simulation Study”, J. Mol. Liq., 211 (2015), 96–104  |
→ |
Application of the embedded atom model to liquid mercury D. K. Belashchenko TVT, 51:1 (2013), 47–55
|
|
| 6. |
V. A. Mirskaya, N. V. Ibavov, D. A. Nazarevich, “Eksperimentalnoe issledovanie izokhornoi teploemkosti binarnoi sistemy n-geptan–voda”, TVT, 53:5 (2015), 692–702  |
→ |
$P$, $\rho$, $T$-properties and phase equilibria in the water-$n$-hexane system with a low content of water S. M. Rasulov, S. M. Orakova TVT, 51:1 (2013), 67–72
|
| 7. |
Bezgomonova E.I., Rasulov A.R., Stepanov G.V., “Liquid-Gas Critical Phenomena in N-Hexane in the Presence of the Liquid Phase of Water”, Russ. J. Phys. Chem. B, 9:7 (2015), 1026–1031  |
→ |
$P$, $\rho$, $T$-properties and phase equilibria in the water-$n$-hexane system with a low content of water S. M. Rasulov, S. M. Orakova TVT, 51:1 (2013), 67–72
|
| 8. |
Bezgomonova E.I., Saidov S.M., Stepanov G.V., “Isochoric Heat Capacity of An N-Hexane Plus Water System”, Russ. J. Phys. Chem. A, 89:1 (2015), 5–9  |
→ |
$P$, $\rho$, $T$-properties and phase equilibria in the water-$n$-hexane system with a low content of water S. M. Rasulov, S. M. Orakova TVT, 51:1 (2013), 67–72
|
|
| 9. |
V. I. Nedostup, “Klassicheskie idealnye linii na fazovoi diagramme prostykh veschestv”, TVT, 53:1 (2015), 66–71  |
→ |
Asymptotic properties of ideal curves on a thermodynamic surface V. I. Nedostup TVT, 51:1 (2013), 79–85
|
| 10. |
Evgeny Apfelbaum, Vladimir Vorob’ev, Springer Proceedings in Physics, 171, Physics of Liquid Matter: Modern Problems, 2015, 139  |
→ |
Asymptotic properties of ideal curves on a thermodynamic surface V. I. Nedostup TVT, 51:1 (2013), 79–85
|
|
| 11. |
S. V. Shevkunov, “Struktura i ustoichivost vodorodnykh svyazei v usloviyakh nagreva v nanoporakh”, TVT, 53:2 (2015), 270–283  |
→ |
Fluctuation statistical theory of nucleation in water vapors at near-critical temperatures S. V. Shevkunov TVT, 51:1 (2013), 86–96
|
| 12. |
A. Yu. Varaksin, “Vliyanie chastits na turbulentnost nesuschego potoka gaza”, TVT, 53:3 (2015), 441–466  |
→ |
Fluctuation statistical theory of nucleation in water vapors at near-critical temperatures S. V. Shevkunov TVT, 51:1 (2013), 86–96
|
|
| 13. |
Benderskii L.A., Lyubimov D.A., “Analysis of the Nozzle Exit Flow Parameter Effect on the Turbulence Characteristics and the Noise Level in Jets Issuing From Nozzles of Different Types”, Fluid Dyn., 50:6 (2015), 812–819  |
→ |
Investigation of the effect of a pylon and a wing with flaps on the flow within an exhaust jet of a double-flow turbojet engine by a simulation method for large eddies D. A. Lyubimov TVT, 51:1 (2013), 120–137
|
|
| 14. |
D. Ceotto, “Semi-empirical equation for the estimation of viscosity of liquid metal alloys of eutectic composition”, TVT, 53:3 (2015), 397–402  |
→ |
Thermal diffusivity, viscosity and Prandtl number for molten iron and low carbon steel D. Ceotto TVT, 51:1 (2013), 140–144
|
| 15. |
A.S. Ortiz-Pérez, L.A. Dávalos-Orozco, “Convection in a horizontal fluid layer under an inclined temperature gradient with a negative vertical Rayleigh number”, International Journal of Heat and Mass Transfer, 90 (2015), 1214  |
→ |
Thermal diffusivity, viscosity and Prandtl number for molten iron and low carbon steel D. Ceotto TVT, 51:1 (2013), 140–144
|
| 16. |
D. Ceotto, G. Croce, “Empirical equation for the prediction of viscosity for some common nanofluids”, Colloid J, 77:2 (2015), 244  |
→ |
Thermal diffusivity, viscosity and Prandtl number for molten iron and low carbon steel D. Ceotto TVT, 51:1 (2013), 140–144
|
|
| 17. |
A. S. Mustafaev, A. Yu. Grabovskii, “Novye vozmozhnosti tsilindricheskogo zonda v gazorazryadnoi plazme”, TVT, 53:3 (2015), 347–355  |
→ |
Possibilities of application of plasma technologies to recycle organic-containing substances: Particularities of high current free burning arcs A. F. Rutberg, O. B. Vasileva, I. I. Kumkova, A. A. Safronov TVT, 51:2 (2013), 191–197
|
| 18. |
O. B. Vasileva, I. I. Kumkova, V. E. Kuznetsov, A. F. Rutberg, A. A. Safronov, V. N. Shiryaev, “Vozmozhnosti primeneniya plazmennykh tekhnologii dlya pererabotki organosoderzhaschikh veschestv.
Vliyanie formy krivoi napryazheniya na rezhim raboty plazmotrona”, TVT, 53:4 (2015), 494–499  |
→ |
Possibilities of application of plasma technologies to recycle organic-containing substances: Particularities of high current free burning arcs A. F. Rutberg, O. B. Vasileva, I. I. Kumkova, A. A. Safronov TVT, 51:2 (2013), 191–197
|
|
| 19. |
A. A. Osychenko, A. D. Zalesskii, A. S. Krivokharchenko, A. K. Shakhbazyan, A. V. Ryabova, V. A. Nadtochenko, “Sliyanie blastomerov embrionov myshi pod deistviem femtosekundnogo lazernogo izlucheniya. Effektivnost obrazovaniya blastotsist i razvitiya embrionov”, Kvantovaya elektronika, 45:5 (2015), 498–502  |
→ |
Application of femtosecond laser pulses in biomedical cell technologies I. V. Ilina, A. V. Ovchinnikov, D. S. Sitnikov, M. M. Rakityanskiy, M. B. Agranat, Y. V. Khramova, M. L. Semenova TVT, 51:2 (2013), 198–204
|
| 20. |
Wang G., Moya S., Lu Z., Gregurec D., Zreiqat H., “Enhancing Orthopedic Implant Bioactivity: Refining the Nanotopography”, Nanomedicine, 10:8 (2015), 1327–1341  |
→ |
Application of femtosecond laser pulses in biomedical cell technologies I. V. Ilina, A. V. Ovchinnikov, D. S. Sitnikov, M. M. Rakityanskiy, M. B. Agranat, Y. V. Khramova, M. L. Semenova TVT, 51:2 (2013), 198–204
|
|
|
|
| Total publications: |
11591 |
| Scientific articles: |
10989 |
| Authors: |
8875 |
| Citations: |
23877 |
| Cited articles: |
3844 |
 |
Impact Factor Web of Science |
|
for 2025:
0.400 |
|
for 2024:
0.700 |
|
for 2023:
1.000 |
|
for 2021:
0.518 |
|
for 2020:
1.094 |
|
for 2019:
1.085 |
|
for 2018:
1.164 |
|
for 2017:
1.064 |
|
for 2016:
1.110 |
|
for 2015:
1.048 |
|
for 2014:
0.952 |
|
for 2013:
1.156 |
|
for 2012:
0.492 |
|
for 2011:
0.432 |
|
for 2010:
0.635 |
|
for 2009:
0.578 |
|
for 2008:
0.469 |
 |
Scopus Metrics |
|
2025 |
CiteScore |
1.700 |
|
2025 |
SNIP |
0.513 |
|
2025 |
SJR |
0.163 |
|
2024 |
CiteScore |
1.400 |
|
2024 |
SNIP |
0.419 |
|
2024 |
SJR |
0.160 |
|
2023 |
CiteScore |
1.500 |
|
2023 |
SNIP |
0.421 |
|
2023 |
SJR |
0.295 |
|
2022 |
SJR |
0.307 |
|
2021 |
SJR |
0.352 |
|
2020 |
SJR |
0.433 |
|
2019 |
SJR |
0.538 |
|
2018 |
CiteScore |
1.360 |
|
2018 |
SJR |
0.461 |
|
2017 |
CiteScore |
1.090 |
|
2017 |
SNIP |
1.434 |
|
2017 |
SJR |
0.455 |
|
2016 |
CiteScore |
1.140 |
|
2016 |
SNIP |
1.409 |
|
2016 |
SJR |
0.484 |
|
2015 |
CiteScore |
0.930 |
|
2015 |
SNIP |
1.317 |
|
2015 |
IPP |
0.904 |
|
2015 |
SJR |
0.401 |
|
2014 |
CiteScore |
0.920 |
|
2014 |
SNIP |
1.246 |
|
2014 |
IPP |
0.872 |
|
2014 |
SJR |
0.277 |
|
2013 |
SNIP |
0.945 |
|
2013 |
IPP |
0.961 |
|
2013 |
SJR |
0.253 |
|
2012 |
SNIP |
0.771 |
|
2012 |
IPP |
0.436 |
|
2012 |
SJR |
0.269 |
|