Combined volume discharge radiation in presence of a diffracted shock wave front
Ivanova A.A.1, Mursenkova I.V.1
1Department of Physics, Lomonosov Moscow State University, Moscow, Russia
Email: iaanniva.phys@gmail.com, militcina.aa18@physics.msu.ru

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Results of an experimental study of a combined nanosecond volume discharge in air in front of a diffracted shock wave with various shock wave front positions in the discharge glow are reported. With Mach numbers of 3.0-4.4, radiation and current of a discharge initiated at pulsed voltage of 25 kV were recorded. It was found that discharge glow duration in the presence of a shock wave was longer than in still air, and time dependence of glow intensity was non-monotonic and had an additional maximum at the afterglow stage. Kinetic processes in a plasma region with a length from 7-40 mm, which interacted with a shock wave at the afterglow stage, were explored. Keywords: shock wave, combined nanosecond volume discharge, gas-discharge plasma, ICCD camera, plasma radiation.
  1. V. Fomin, P. Tretyakov, J.-P. Taran. Aerospace Sci. Technol., 8 (5), 411 (2004). https://doi.org/10.1016/j.ast.2004.01.005
  2. S.O. Macheret, Yu.Z. Ionikh, N.V. Chernysheva, A.P. Yalin, L. Martinelli, R.B. Miles. Phys. Fluids, 13 (9), 13 (2001)
  3. D.A. Xu, M.N. Shneider, D.A. Lacoste, C.O. Laux. J. Phys. D: Appl. Phys., 47 (23), 235202 (2014). DOI: 10.1088/0022-3727/47/23/235202
  4. G. Cicala, D. Bruno, M. Capitelli, S. Longo, A.C. Rain\`o. J. Physics D: Appl. Phys., 57, 375 (2010). DOI: https://doi.org/10.1140/epjd/e2010-00066-y
  5. I. Doroshchenko, I. Znamenskaya, A. Kuznetsov, I. Mursenkova, N. Sysoev. Tech. Phys., 63 (5), 662 (2018). DOI: 10.1134/S1063784218050067
  6. T.A. Lapushkina, A.V. Erofeev, O.A. Azarova, O.V. Kravchenko. Tech. Phys., 64 (1), 34 (2019). DOI: 10.1134/S1063784219010201
  7. A.Yu. Starikovskiy, N.L. Aleksandrov. Plasma Phys. Rep., 47 (2), 148 (2021)
  8. D. Knight, N. Kianvashrad. Energies, 15, 9645 (2022)
  9. N. Arkhipov, I. Znamenskaya, I. Mursenkova, I. Ostapenko, N. Sysoev. Moscow Univ. Phys. Bull., 69, 96 (2014)
  10. N. Siefert, B.N. Ganguly, P. Bletzinger. Phys. Rev. E, 72, 066402 (2005)
  11. A.I. Klimov, A.N. Koblov, G.I. Mishin, Yu.L.Serov, I.P. Yavor. Sov. Tech. Phys. Lett., 8, 240 (1982)
  12. P.Yu. Georgievskii, V.A. Levin. Fluid Dyn., 38, 794 (2003). DOI: 10.1023/B:FLUI.0000007841. 91654.10
  13. P.Yu. Georgievskiy, V.A. Levin, O.G. Sutyrin. Tech. Phys. Lett., 44, 10 (2018)
  14. A.K. Sukhov. Moscow Univ. Phys. Bull., 76, 47 (2021). DOI: 10.3103/S0027134921010100
  15. S. Nagaraja, V. Yang, I. Adamovich. J. Phys. D: Appl. Phys., 46, 155205 (2013)
  16. I. Znamenskaya, I. Mursenkova, I. Doroshchenko, I. Ivanov. Phys. Fluids, 31 (11), 116101 (2019)
  17. X.G. Ma, J. Fan, Y.K. Wu, X.W. Liu, R. Xue. Phys. Fluids, 34 (8), 086102 (2023)
  18. I.A. Znamenskaya, A.E. Lutsky. Issledovanie evolyutsii i vzaimodeistviya razryvov techeniya v kanale pod deistviem impulsnogo vlozheniya energii (Preprint IPM im. M.V. Keldysha RAN, 2005), N 88. (in Russian)
  19. I.A. Znamenskaya, D.A. Koroteev, D.M. Orlov, I.V. Mursenkova, A.E. Lutsky, I.E. Ivanov. Shock wave interaction with nanosecond transversal discharges in shock tube channel (ISSW-26. Book of Abstracts. 2007), p. 1-7
  20. I. Znamenskaya, A. Kuznetsov, I. Mursenkova, I. Doroschenko. J. Phys.: Conf. Series, 1112, 012006 (2018)
  21. S.B. Leonov, V. Petrishchev, I.V. Adamovich. J. Phys. D: Appl. Phys., 47, 465201 (2014)
  22. N. Aleksandrov, E. Anokhin, S. Kindysheva, A. Kirpichnikov, I. Kosarev, M. Nudnova, S. Starikovskaia, A. Starikovskii. J. Phys. D-Appl. Phys., 45, 255202 (2012). DOI: 10.1088/0022-3727/45/25/255202
  23. A. Kuznetsov, I. Mursenkova, P. Ulanov. Tech. Phys. Lett., 45 (12), 1266 (2019). DOI: 10.1134/S1063785019120228
  24. A.Yu. Kuznetsov, I.V. Mursenkova. Appl. Phys., 5, 16 (2016)
  25. H. Brunet, P. Vincent. J. Appl. Phys., 50 (7), 4708 (1979). DOI: 10.1063/1.326527
  26. V.M. Borisov, A.I. Demin, A.V. Eltsov, V.P. Novikov, O.B. Khristoforov. Kvantovaya elektronika, 26 (3), 204 (1999) (in Russian)
  27. Electronic resource. Available at: https://www.vniiofi.ru/depart/r5/ k011.html?ysclid=m471hwzuxa251158883
  28. A.Yu. Kuznetsov, I.V. Mursenkova. Appl. Phys., 5, 16 (2016)
  29. Yu.P. Raizer. Gas Discharge Physics (Springer, Berlin, 1991)
  30. I. Ivanov, I. Kryukov, D. Orlov, I. Znamenskaya. Experiments in Fluids, 48 (4), 607 (2010)
  31. G. Glushko, I. Ivanov, I. Kryukov. Math. Models Comput. Simul., 2, 407 (2010)
  32. A. Ivanova, I. Mursenkova. Moscow Univ. Phys. Bull., 78, 204 (2023)
  33. H. Brunet, P. Vincent. J. Appl. Phys., 50 (7), 4708 (1979). DOI: 10.1063/1.326527
  34. Y. Lebedev, V. Shakhatov. Plasma Phys. Reports, 32, 568 (2006). DOI: 10.1134/S1063780X06010065
  35. W. Yang, Q. Zhou, S. Qiang, Z. Dong, E. Yan. AIP Advances, 10, 105311 (2020). DOI: 10.1063/5.0021993

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