|
|
|
|
References
|
|
| |
| 1. |
Nagnibeda E.A., Kustova E.V., Nonequilibrium Reacting Gas Flows. Kinetic Theory of Transport and Relaxation Processes, Heat and Mass Transfer., Springer-Verlag, Berlin–Heidelberg, 2009 |
| 2. |
Campoli L., Kunova O., Kustova E., Melnik M., “Models validation and code profiling in state-to-state simulations of shock heated air flows”, Acta Astronautica, 175 (2020), 493-509 |
| 3. |
Gimelshein S.F., Wysong I.J., Fangman A.J., Andrienko D.A., Kunova O.V., Kustova E.V., Garbacz C., Fossati M., Hanquist K., “Kinetic and Continuum Modeling of High-Temperature Oxygen and Nitrogen Binary Mixtures”, J. Thermophys. Heat Transf., 36:2 (2022), 399–418 |
| 4. |
Mishina A.I., Kustova E.V., “Spatially homogeneous relaxation of CO molecules withresonant VE transitions”, Vestnik St Petersb. Univ. Math., 2017, no. 50, 188–197 |
| 5. |
Kunova O.V., Kustova E.V., Melnik M.Yu., Savelev A.S., “Validation of models of stateto-state oxygen kinetics behind shock waves”, Phys. Chem. Kinetics Gas Dynam., 19:3 (2018) (Russian) |
| 6. |
Gimelshein S.F., “Particle Modeling of Reflected Shock Waves”, J. Thermophys. Heat Transf., 35:2 (2021), 362–371 |
| 7. |
Alekseev I.V., Kustova E.V., “Numerical simulations of shockwaves in viscous carbon dioxide flows using finite volume method.”, Vestnik St Petersb. Univ. Math., 2020, no. 53, 344–350 |
| 8. |
Ibraguimova L.B., Sergievskaya A.L., Levashov V.Yu., Shatalov O.P., Tunik Yu.V., Zabelinskii I. E., “Investigation of oxygen dissociation and vibrational relaxation at temperatures 4000-10800 K”, J. Chem. Phys., 139 (2013) |
| 9. |
Luo H., Sebastião I.B., Alexeenko A.A., Macheret S.O., “Classical impulsive model for dissociation of diatomic molecules in direct simulation Monte Carlo”, Phys. Rev. Fluids, 3 (2018) |
| 10. |
Gimelshein S.F., Wysong I.J., Bykova N.G., Shatalov O.P., Zabelinskii I.E., “Improved Analysis of O$_2$ Ultraviolet Absorption Spectra Under Nonequilibrium Shock Conditions”, AIAA Journal, 58:10 (2020), 4451–4460 |
| 11. |
Streicher J.W., Krish A., Hanson R.K., “Coupled vibration-dissociation time-histories and rate measurements in shock-heated, nondilute O$_2$ and O$_2$ - Ar mixtures from 6000 to 14000 K”, Phys. Fluids, 33 (2021), 056107 |
| 12. |
Schwartz R.N., Slawsky Z.I., Herzfeld K.F., “Calculation of vibrational relaxation times in gases”, J. Chem. Phys., 20:10 (1952), 1591–1599 |
| 13. |
Adamovich I., Macheret S., Rich J., Treanor C., “Vibrational energy transfer rates using a forced harmonic oscillator model”, J. Thermophys. Heat Transf., 12:1 (1998), 57–65 |
| 14. |
Marrone P., Treanor C., “Chemical relaxation with preferential dissociation from excited vibrational levels”, Phys. Fluids, 6:9 (1963), 1215–1221 |
| 15. |
Kunova O., Kustova E., Savelev A., “Generalized Treanor - Marrone model for state-specific dissociation rate coefficients”, Chemical Physics Letter, 659 (2016), 80–87 |
| 16. |
Pogosbekyan M., Sergievskaya A., “Simulation of the oxygen dissociation reaction under thermally nonequilibrium conditions: models, trajectory calculations, and the experiment.”, Russ. J. Phys. Chem. B, 2018, no. 12, 208–218 |
| 17. |
Park C., Howe J.T., Jaffe R.L., Candler G.V., “Review of Chemical-Kinetic Problems of Future NASA Missions, II: Mars Entries”, J. Thermophys. Heat Tran., 8:1 (1994), 9–23 |
| 18. |
Adamovich I., “Three-dimensional analytic probabilities of coupled vibrational-rotational translational energy transfer for DSMC modeling of nonequilibrium flows”, Phys. Fluids, 26:4 (2014), 046102 |