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Investigations of shock wave interaction with nanosecond surface discharge

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Abstract

Non-stationary plane shock wave interaction with localized nanosecond-lasting surface discharges was investigated. Pulse discharge plasma glow evolution was recorded with a CCD camera and gas flow evolution was recorded with laser shadowgraphy. CFD simulations of pulse energy deposition near the horizontal wall surface in front of the shock wave were carried out. Non-stationary 2D symmetrical flow dynamics were studied and analysis of the instantaneous surface discharge energy rate through CFD and shadow images matching was carried out.

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References

  • Bazhenova TV, Gvozdeva LG et al (1986) Non-stationary interaction of shock and detonation waves in gases, Moscow, “Nauka”, 1986, 206 pages. (Russian)—English translation: Urtiew PA, (ed), 1989, Hemisphere Publishing Corporation, New York, 232 pp

  • Ivanov IE, Kryukov IA, Semenov VV (2007) Numerical simulation of separated flow in nozzle with slots. Proceedings of the 26th international symposium on shock waves Gottingen, Germany July 2007 Part XIII Nozzle Flow. p 3810

  • Kuo SP, Kuo Steven S (2006) Theoretical study of plasma effect on a conical shock wave: physics of plasmas, 13(3), pp 033505–033505-6

  • Moreau E (2007) Airflow control by non-thermal plasma actuators. J Phys D Appl Phys 40(3), 605–636

    Google Scholar 

  • Rikanati A, Sadot O, Ben-Dor G, Shvarts D, Kuribayashi T, Takayama K (2006) Shock-wave mach-reflection slip-stream instability: a secondary small-scale turbulent mixing phenomenon. Phys Rev Lett 96:174503-1–174503-4

    Article  Google Scholar 

  • Sasoh A, Ohtani T, Mori K (2006) Pressure effect in a shock-wave–plasma interaction induced by a focused laser pulse. Phys Rev Lett 97(20) 205004-1–205004-4

    Google Scholar 

  • Shu C-W, Osher S (1988) Efficient implementation of essentially non-oscillatory shock-capturing schemes. J Comp Phys 77:439–471

    Article  MATH  MathSciNet  Google Scholar 

  • Skews BW, Kleine H (2007) Flow features resulting from shock wave impact on a cylindrical cavity. J Fluid Mech 580:481–493

    Article  MATH  Google Scholar 

  • Skews BW, Kleine H, Barber T, Iannuccelli M (2007) 16th Australasian fluid mechanics conference crown plaza, gold coast, Australia, 2–7 December, new flow features in a cavity during shock wave impact, pp 414–420

  • Sun M, Takayama K (2003) A note on numerical simulation of vortical structures in shock diffraction. Shock Waves 13(1):25–32

    Article  MATH  MathSciNet  Google Scholar 

  • VanDyke (1986) An album of fluid motion. Parabolic Press

  • Woodward PR, Colella P (1984) The numerical simulation of two-dimensional fluid flow with strong shocks. J Comp Phys 54:115–173

    Article  MATH  MathSciNet  Google Scholar 

  • Znamenskaya IA, Ivanov IE, Kryukov IA, Kuli-Zade TA (2005) Self-localization of the energy supply during pulse ionization of a supersonic flow. Fluid Dyn 40(3):462–473

    Article  MATH  Google Scholar 

  • Znamenskaya IA, Latfullin DF, Lutsky AE, Mursenkova IV, Sysoev NN (2007a) Development of gasdynamic perturbations propagating from a distributed sliding surface discharge. Tech Phys 52(5):546–554

    Article  Google Scholar 

  • Znamenskaya IA, Mursenkova IV, Orlov DM, Sysoev NN (2007b) Localization of pulsed energy deposition in a transverse surface discharge initiated in a gas flow with shock wave. Tech Phys Lett 33(7):575–577

    Article  Google Scholar 

Download references

Acknowledgments

This work was supported by the Russian Foundation for Basic Research, grant No. 08-08-00903-a; 08-08-90003-Bel_a.

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Correspondence to Irina Znamenskaya.

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Ivanov, I., Kryukov, I., Orlov, D. et al. Investigations of shock wave interaction with nanosecond surface discharge. Exp Fluids 48, 607–613 (2010). https://doi.org/10.1007/s00348-009-0714-6

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  • DOI: https://doi.org/10.1007/s00348-009-0714-6

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