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Gorelov Vsevolod Anatol'evich

Publications in Math-Net.Ru

  1. Specific features of modeling of nonequilibrium radiation behind the shock wave in air in the vacuum ultraviolet spectral range

    Prikl. Mekh. Tekh. Fiz., 57:1 (2016),  176–186
  2. Nonequilibrium radiation of the shock wave in air in the vacuum ultraviolet region

    Pisma v Zhurnal Tekhnicheskoi Fiziki, 38:24 (2012),  46–52
  3. Nonequilibrium molecular radiation behind the front of a strong shock wave in the CO$_2$–N$_2$–O$_2$ mixture

    Prikl. Mekh. Tekh. Fiz., 46:2 (2005),  13–22
  4. Numerical modeling of flow with chemical reactions in a strong shock wave with approximate allowance for translational nonequilibrium

    Prikl. Mekh. Tekh. Fiz., 43:4 (2002),  75–86
  5. Investigation of translational nonequilibrium dissociation in front of shock wave

    Mat. Model., 13:7 (2001),  94–98
  6. Effect of transitional nonequilibrium on the molecular–dissociation rate in a hypersonic shock wave

    Prikl. Mekh. Tekh. Fiz., 42:2 (2001),  42–51
  7. Nonequilibrium ionization behind a strong shock wave in the Mars atmosphere

    Prikl. Mekh. Tekh. Fiz., 41:6 (2000),  13–20
  8. Features of ionization and emission behind strong shock waves in air

    Prikl. Mekh. Tekh. Fiz., 28:6 (1987),  23–28
  9. Characteristic features of cylindrical electric probes in the transient state in a supersonic plasma-flow

    TVT, 23:2 (1985),  360–365
  10. CYLINDRICAL ELECTROSTATIC SOUNDS IN THE ULTRASONIC PLASMA BEAM

    Zhurnal Tekhnicheskoi Fiziki, 54:3 (1984),  653–655
  11. Measurement of air ionization behind intense shock-waves

    TVT, 21:3 (1983),  449–453
  12. Probe measurements in an ionized-gas flow contaminated with macroscopic-particles

    TVT, 14:4 (1976),  888–890
  13. Measurement of parameters of stream of dense plasma using conical probes

    TVT, 13:6 (1975),  1248–1254
  14. Измерение электропроводности воздуха за падающей и отраженной ударной волной электродным методом

    TVT, 7:1 (1969),  18–24
  15. Исследования электропроводности потока воздушной плазмы при помощи холодных электродов в поперечном магнитном поле

    TVT, 6:5 (1968),  912–916


© Steklov Math. Inst. of RAS, 2026