Journal: Volume 22, No. 1, 2017
Pages: 55 – 60
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The study of atmosphere meteorological state using a lidar

Mykhailo Medvedsky, Mykhailo Aribzhanov, Oleksandr Havrysh

Abstract

In this paper, using lidar complex for remote sensing of the atmosphere, which is a part of the satellite laser locating station Kyiv-Golosievo, experimental results of counting of photons reflected by aerosols, which characterize the concentration of pollutants in the atmosphere, are obtained. Contour diagrams of impurities concentration on atmospheric probing depth and an angle of elevation for four azimuthal directions are constructed

Keywords

References

  1. Burkov, V.D., Perminov, S.V., Shchukin, D.G., & Shalaev, V.S. (2013). Lidar methods of control of the air basin of a large industrial center in an emergency situation. Lesnoy Vestnik, (7), 46–51. Retrieved from https://les-vest.mf.bmstu.ru/les_vest_7_2013.pdf
  2. Kozintsev, V.I., Orlov, V.M., Belov, M.L., et al. (2002). Opto-electronic systems of ecological monitoring of the natural environment (V.N. Rozhdestvin, Ed.). Moscow: MGTU im. N. E. Baumana.
  3. Matviyenko, G.G., Banakh, V.A., Bobrovnikov, S.M., et al. (2009). Development of atmosphere laser sounding technologies. Optika Atmosfery i Okeana, (10), 915–929.
  4. Kostko, O. (2002). Laser explores the atmosphere. Nauka i Zhizn, (12), 47–54.
  5. Hinkley, E.D. (Ed.). (1979). Laser control of the atmosphere. Moscow: Mir.
  6. Zuev, V.E., & Zuev, V.V. (1992). Remote optical sounding of the atmosphere. St. Petersburg: Gidrometeoizdat.
  7. Solomatin, V.A. (2015). Methodological guidelines for carrying out calculation assignments for the course “Lidars and Scanners”. Moscow: MII GAiK.
  8. Veselovskii, I.A. (2005). Remote laser diagnostics of aerosol and gas components of the atmosphere by Raman and elastic scattering methods (Doctoral dissertation). Moscow.
  9. Kirchner, G., Koidl, F., & Kucharski, D. (2008). Graz kHz SLR LIDAR: first results. In The Path Toward the Next Generation Laser Ranging Network: Proceedings of the 16th International Workshop on Laser Ranging (pp. 373–375). Potsdam, Germany.
  10. Privalov, V.E., & Shemanin, V.G. (2001). Parameters of lidars for remote sensing of gas molecules and aerosol in the atmosphere. St. Petersburg: Baltic GTU «VOENMEKH».
  11. Medvedsky, M.M., Hluschenko, Yu.M., & Aribjanov, M.T. (2016). Lidar system on Kiev SLR 1824. In The Path Toward the Next Generation Laser Ranging Network: Proceedings of the 16th International Workshop on Laser Ranging. Potsdam, Germany.
  12. Medvedsky, M.M. (2016). New external calibration target on 1824. In The Path Toward the Next Generation Laser Ranging Network: Proceedings of the 16th International Workshop on Laser Ranging. Potsdam, Germany.
  13. Medvedskyi, M.M., Aribzhanov, M.T., & Havrysh, O.S. (2017). Lidar complex for monitoring the meteorological state of the atmosphere. Visnyk Cherkaskoho Derzhavnoho Tekhnolohichnoho Universytetu. Series: Technical Sciences, (1), 33–39.
  14. Bolotina, O.V., Hluschenko, Yu.M., Medvedsky, M.M., et al. (2001). Satellite laser ranging station ‘Golosiiv-Kiev’: technical characteristics and results of observations of 2001. Kinematics and Physics of Celestial Bodies, 17(6), 560–572.

Suggested citation

Medvedsky, M., Aribzhanov, M., & Havrysh, O. (2017). The study of atmosphere meteorological state using a lidar. Bulletin of Cherkasy State Technological University, 22(2), 55-60.