|
2-years impact-factor Math-Net.Ru of «Teplofizika vysokikh temperatur» journal, 2018
2-years impact-factor Math-Net.Ru of the journal in 2018 is calculated
as the number of citations in 2018 to the scientific papers published during
2016–2017.
The table below contains the list of citations in 2018 to the papers
published in 2016–2017. 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 |
| 2018 |
1.491 |
269 |
401 |
161 |
32.9% |
|
|
|
| N |
Citing pulication |
|
Cited paper |
|
| 1. |
V. B. Bobrov, S. A. Triger, “O temperaturnykh effektakh v korrelyatsionnykh funktsiyakh vyrozhdennoi elektronnoi plazmy”, TVT, 56:2 (2018), 180–184  |
→ |
Smooth transition from spectral lines to continuum in dense hydrogen plasma L. G. D'yachkov TVT, 54:1 (2016), 7–12
|
| 2. |
L. G. Dyachkov, D. I. Kavyrshin, O. V. Korshunov, V. F. Chinnov, “Osobennosti raspredeleniya zaselennostei atomnykh urovnei v silnoionizovannoi dugovoi plazme geliya”, TVT, 56:4 (2018), 631–634  |
→ |
Smooth transition from spectral lines to continuum in dense hydrogen plasma L. G. D'yachkov TVT, 54:1 (2016), 7–12
|
| 3. |
V. B. Bobrov, “High-frequency asymptotic behavior of the spectral energy distribution of equilibrium radiation in a degenerate electron plasma”, Tech. Phys., 63:2 (2018), 160–166  |
→ |
Smooth transition from spectral lines to continuum in dense hydrogen plasma L. G. D'yachkov TVT, 54:1 (2016), 7–12
|
| 4. |
S. A. Maslov, V. B. Bobrov, A. V. Kirillin, S. A. Trigger, “Influence of the electron intrinsic magnetic moment on the transverse dielectric permittivity of degenerate electron gas”, XXXII International Conference on Interaction of Intense Energy Fluxes With Matter (Elbrus 2017), Journal of Physics Conference Series, 946, IOP Publishing Ltd, 2018, UNSP 012125  |
→ |
Smooth transition from spectral lines to continuum in dense hydrogen plasma L. G. D'yachkov TVT, 54:1 (2016), 7–12
|
|
| 5. |
A. E. Galashev, O. R. Rakhmanova, L. A. Elshina, “Molecular dynamics study of the formation of solid al-c nanocomposites”, Russ. J. Phys. Chem. B, 12:3 (2018), 403–411  |
→ |
Computer simulation of a forced drift of lithium ions through graphene membranes A. E. Galashev, O. R. Rakhmanova TVT, 54:1 (2016), 13–22
|
| 6. |
A. Y. Galashev, K. A. Ivanichkina, “Computer study of atomic mechanisms of intercalation/deintercalation of Li ions in a silicene anode on an Ag(111) substrate”, J. Electrochem. Soc., 165:9 (2018), A1788–A1796  |
→ |
Computer simulation of a forced drift of lithium ions through graphene membranes A. E. Galashev, O. R. Rakhmanova TVT, 54:1 (2016), 13–22
|
|
| 7. |
Yu. D. Korolev, I. A. Shemyakin, V. S. Kasyanov, V. G. Geyman, A. V. Bolotov, V. O. Nekhoroshev, “Development of discharge in a saline solution at near-threshold voltages”, Plasma Phys. Rep., 44:6 (2018), 581–587  |
→ |
Some pecularities of electric discharge between a solid electrode and technical water É. E. Son, Al. F. Gaisin, M. A. Leushka, Az. F. Gaisin, R. Sh. Sadriev, F. M. Gaisin TVT, 54:1 (2016), 29–31
|
|
| 8. |
A. F. Kolesnikov, A. N. Gordeev, S. A. Vasilevskii, “Teploobmen v dozvukovykh struyakh dissotsiirovannogo azota: eksperiment na VCh-plazmotrone i chislennoe modelirovanie”, TVT, 56:3 (2018), 417–423  |
→ |
Effects of catalytic recombination on the surface of metals and quartz for the conditions of entry into the martian atmosphere A. F. Kolesnikov, A. N. Gordeev, S. A. Vasil'evskii TVT, 54:1 (2016), 32–40
|
| 9. |
B. E. Zhestkov, M. L. Vaganova, Yu. E. Lebedeva, O. Yu. Sorokin, P. N. Medvedev, “Vliyanie vozdeistviya vysokoskorostnogo potoka azota na strukturu i khimicheskii sostav vysokotemperaturnogo pokrytiya na kompozitsionnom $\rm SiC$-materiale”, TVT, 56:3 (2018), 395–398  |
→ |
Effects of catalytic recombination on the surface of metals and quartz for the conditions of entry into the martian atmosphere A. F. Kolesnikov, A. N. Gordeev, S. A. Vasil'evskii TVT, 54:1 (2016), 32–40
|
| 10. |
G. Zuppardi, “Effects of chemistry in mars entry and earth re-entry”, Adv. Aircr. Spacecr. Sci., 5:5 (2018), 581–594  |
→ |
Effects of catalytic recombination on the surface of metals and quartz for the conditions of entry into the martian atmosphere A. F. Kolesnikov, A. N. Gordeev, S. A. Vasil'evskii TVT, 54:1 (2016), 32–40
|
|
| 11. |
V. S. Zarubin, G. N. Kuvyrkin, I. Yu. Saveleva, “Variatsionnaya forma modeli teplovogo vzryva v tverdom tele s zavisyaschei ot temperatury teploprovodnostyu”, TVT, 56:2 (2018), 235–240  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
| 12. |
R. R. Kadyrov, L. S. Kuleshova, I. G. Fattakhov, “Technologies and technical devices for annual regulated flooding of a productive strata”, Proceedings of the International Conference “Actual Issues of Mechanical Engineering” (AIME 2018), AER-Advances in Engineering Research, 157, eds. B. Malozyomov, E. Porsev, N. Martyushev, Atlantis Press, 2018, 232–235  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
| 13. |
R. N. Yusupov, “Resource of Russian religious and philosophical tradition in constructive relationship with west”, RPTSS 2018–International Conference on Research Paradigms Transformation in Social Sciences, European Proceedings of Social and Behavioural Sciences, 50, eds. A. Borisovich, B. Iosifovich, M. Vladimirovich, Future Acad., 2018, 1402–1408  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
| 14. |
K. F. Gabdrakhmanova, G. R. Izmailova, P. A. Larin, E. R. Vasilyeva, M. A. Madjidov, S. R. Marupov, “Nomogram method as means for resource potential efficiency predicative aid of petrothermal energy”, International Conference Information Technologies in Business and Industry 2018, Journal of Physics Conference Series, 1015, IOP Publishing Ltd, 2018, UNSP 032036  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
| 15. |
G. R. Izmailova, “Issledovanie vysokochastotnogo elektromagnitno-akusticheskogo nagreva neftyanogo plasta s posleduyuschei zakachkoi rastvoritelya”, TVT, 56:6 (2018), 934–938  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
| 16. |
K F Gabdrakhmanova, G R Izmaylova, P A Larin, “The way of using geothermal resources for generating electric energy in wells at a late stage of operation”, IOP Conf. Ser.: Earth Environ. Sci., 194 (2018), 082012  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
| 17. |
Oksana V. Danilova, S. Cindori, O. Larouk, E.Yu. Malushko, L.N. Rebrina, N.L. Shamne, “Peculiarities of Forming General Cultural Competences in Students of Institutions of Higher Technical Education by Means of Interdisciplinary Integration”, SHS Web Conf., 50 (2018), 01216  |
→ |
Acoustic wave energy absorption and distributed heat sources upon an acoustic impact on media G. R. Izmaylova, L. A. Kovaleva, N. M. Nasyrov TVT, 54:1 (2016), 45–50
|
|
| 18. |
D. S. Sitnikov, I. V. Ilina, A. A. Pronkin, I. M. Zurina, A. A. Gorkun, Yu. V. Khramova, N. V. Kosheleva, “Safety of laser and terahertz femtosecond pulses effect on living bioobjects”, 2018 International Conference Laser Optics (ICLO 2018), IEEE, 2018, 456  |
→ |
Femtosecond laser assisted hatching: dependence of \textit{zona pellucida} drilling efficiency and embryo development on laser wavelength and pulse energy I. V. Il'ina, Yu. V. Khramova, M. A. Filatov, M. L. Semenova, D. S. Sitnikov TVT, 54:1 (2016), 46–51
|
| 19. |
D. S. Sitnikov, I. V. Ilina, N. V. Kosheleva, Yu. V. Khramova, M. A. Filatov, M. L. Semenova, I. M. Zurina, A. A. Gorkun, I. N. Saburina, “Noncontact laser microsurgery of three-dimensional living objects for use in reproductive and regenerative medicine”, XXXII International Conference on Interaction of Intense Energy Fluxes With Matter (Elbrus 2017), Journal of Physics Conference Series, 946, IOP Publishing Ltd, 2018, UNSP 012001  |
→ |
Femtosecond laser assisted hatching: dependence of \textit{zona pellucida} drilling efficiency and embryo development on laser wavelength and pulse energy I. V. Il'ina, Yu. V. Khramova, M. A. Filatov, M. L. Semenova, D. S. Sitnikov TVT, 54:1 (2016), 46–51
|
|
| 20. |
K. K. Maevskii, S. A. Kinelovskii, “Termodinamicheskie parametry smesei s nitridom kremniya pri udarno-volnovom vozdeistvii v predstavleniyakh ravnovesnoi modeli”, TVT, 56:6 (2018), 876–881  |
→ |
Assessment of the effect of particle size on the rate of temperature alignment in systems used for shock-wave synthesis of diamond, cubic boron nitrade, and $\gamma$-phase of silicon nitride, based on a simple model A. N. Zhukov, S. E. Zakiev, V. V. Yakushev TVT, 54:1 (2016), 51–57
|
|
|
|
| Total publications: |
11591 |
| Scientific articles: |
10989 |
| Authors: |
8874 |
| Citations: |
23685 |
| Cited articles: |
3827 |
 |
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 |
|