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Gorshunov Nikolay Mikhailovich

Publications in Math-Net.Ru

  1. $^{15}$N isotope enrichment of the atomic nitrogen component in atomic-molecular exchange reactions in the post-discharge zone

    Zhurnal Tekhnicheskoi Fiziki, 92:4 (2022),  520–532
  2. Rotation of a plasma jet by high-frequency electromagnetic fields and its use for mass separation

    Zhurnal Tekhnicheskoi Fiziki, 90:3 (2020),  482–488
  3. Electron temperature of a plasma in a calcium plasma source based on an electron cyclotron resonance discharge in vapor

    Zhurnal Tekhnicheskoi Fiziki, 85:2 (2015),  59–63
  4. Enrichment of the nitrogen atomic component with the $^{15}$N isotope in a post-discharge zone

    Pis'ma v Zh. Èksper. Teoret. Fiz., 77:4 (2003),  192–196
  5. Conversion of pulse-periodic CO2 laser radiation to the second harmonic in AgGaSe2 crystals

    Kvantovaya Elektronika, 22:3 (1995),  268–270
  6. Investigation of a laser-active D2–CO2–Ar mixture excited by a non-self-sustained discharge

    Kvantovaya Elektronika, 16:4 (1989),  728–729
  7. Experimental determination of the parameters of vibrational–rotational transitions in isotopic forms of CO2 molecules

    Kvantovaya Elektronika, 15:4 (1988),  838–840
  8. Investigation of the active medium of H2–HCl gasdynamic lasers in the anharmonic approximation

    Kvantovaya Elektronika, 13:10 (1986),  2102–2108
  9. ISOTOPE DISTRIBUTION IN THE MOVEMENT OF CHEMICAL-REACTIONS, PASSING IN NONEQUILIBRIUM HYPERSONIC CURRENTS

    Zhurnal Tekhnicheskoi Fiziki, 54:8 (1984),  1572–1575
  10. Investigation of amplification of light by CO2 molecules under conditions of supersonic mixing of H–H2–Xe and CO2–Cl2–He streams

    Kvantovaya Elektronika, 11:4 (1984),  824–826
  11. Investigation of the active medium of a gasdynamic laser with nitrogen heating in a finite-volume chamber

    Kvantovaya Elektronika, 11:3 (1984),  603–605
  12. Investigation of a D2–CO2 gasdynamic mixing laser

    Kvantovaya Elektronika, 11:2 (1984),  400–402
  13. Isotope separation in nonequilibrium reactions involving the oxidation of nitrogen molecules in supersonic nozzles

    Prikl. Mekh. Tekh. Fiz., 24:6 (1983),  3–11
  14. Calculation of probabilities of vibrational-vibrational exchange between isotopic modifications of $\mathrm{CO}$ molecules

    Prikl. Mekh. Tekh. Fiz., 24:1 (1983),  3–5
  15. Feasibility of construction of a chemical H2–Cl2 laser with a chain reaction mechanism

    Kvantovaya Elektronika, 8:1 (1981),  178–182
  16. Frequency-selective stimulated emission from CO2 molecules in the 16 μ band

    Kvantovaya Elektronika, 8:1 (1981),  156–159
  17. Comprehensive optimization of gasdynamic laser parameters for maximum gain in the $16\mu m$ band

    Kvantovaya Elektronika, 7:10 (1980),  2224–2227
  18. Optical gain optimization in a supersonic stream when vibrationally excited $N_2$ is mixed with $CO_2-He$

    Kvantovaya Elektronika, 7:9 (1980),  1869–1875
  19. Gasdynamic chemical laser utilizing a $D-O_3-CO_2$ mixture. II. Calculation model

    Kvantovaya Elektronika, 7:7 (1980),  1430–437
  20. Gasdynamic chemical laser utilizing $D-O_3-CO_2$ and $H-O_3-CO_2$ mixtures. I. Experimental investigation

    Kvantovaya Elektronika, 7:7 (1980),  1422–1429
  21. Closed-cycle gasdynamic $CO_2$ laser employing a gas separator

    Kvantovaya Elektronika, 7:4 (1980),  764–769
  22. Gain measurement in a supersonic jet utilizing a D+O3+CO2 mixture

    Kvantovaya Elektronika, 5:12 (1978),  2656–2657
  23. Calculation of probabilities of vibrational-translational and vibrational-vibrational exchanges between isotopic variants of nitrogen molecules at low temperatures

    Prikl. Mekh. Tekh. Fiz., 18:5 (1977),  5–12
  24. Possibility of obtaining generation on a CO molecule behind the front of a compressed detonation wave in a CS$_2$ + O$_2$ mixture

    Fizika Goreniya i Vzryva, 12:5 (1976),  739–744
  25. Supersonic chemical CO2 laser utilizing mixing of atomic deuterium with ozone and carbon dioxide

    Kvantovaya Elektronika, 3:5 (1976),  1142–1143
  26. Stimulated emission from a CS2–O mixture in a shock tube with a supersonic nozzle

    Kvantovaya Elektronika, 3:2 (1976),  463–465


© Steklov Math. Inst. of RAS, 2026