Content of issue 09, volume 34, 2021

1. Geints Yu. E., Zemlyanov A. A. Numerical simulations of filamentation of synthesized femtosecond coronal laser beams in air. P. 665–675
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Geints Yu. E., Zemlyanov A. A. Numerical simulations of filamentation of synthesized femtosecond coronal laser beams in air. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 665–675. DOI: 10.15372/AOO20210901 [in Russian].
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Geints Yu.E. and Zemlyanov A.A. Numerical Simulation of Filamentation of Synthesized Femtosecond Coronal Profile Laser Beams in Air // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 517–527.
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2. Buldyreva J. V., Troitsyna L. A., Dudaryonok A. S., Lavrentieva N. N. Broadening coefficients of methyl iodide vibrotational lines induced by nitrogen, oxygen and air pressure. P. 676–681
Bibliographic reference:
Buldyreva J. V., Troitsyna L. A., Dudaryonok A. S., Lavrentieva N. N. Broadening coefficients of methyl iodide vibrotational lines induced by nitrogen, oxygen and air pressure. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 676–681. DOI: 10.15372/AOO20210902 [in Russian].
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3. Prokop'ev V. E. Spectra of photobiological inactivation of SARS-CoV-2 by solar UVB radiation (280–320 nm). P. 682–688
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Prokop'ev V. E. Spectra of photobiological inactivation of SARS-CoV-2 by solar UVB radiation (280–320 nm). // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 682–688. DOI: 10.15372/AOO20210903 [in Russian].
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Prokop’ev V.E. Spectra of Photobiological Inactivation of SARS-CoV-2 by Solar UVB Radiation (280–320 nm) // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 560–566.
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4. Kalinskaya D. V., Medvedev A. V., Aleskerova A. A. Influence of dust transport on the intensity of cyanobacterial bloom in Caspian Sea. P. 689–695
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Kalinskaya D. V., Medvedev A. V., Aleskerova A. A. Influence of dust transport on the intensity of cyanobacterial bloom in Caspian Sea. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 689–695. DOI: 10.15372/AOO20210904 [in Russian].
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Kalinskaya D.V., Medvedeva A.V. and Aleskerova A.A. The Influence of Dust Transport on the Intensity of Cyanobacterial Bloom in the Caspian Sea // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 611–616.
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5. Rostovtseva V. V., Izhitskiy A. S., Goncharenko I. V., Konovalov B. V., Zavialov P. O. On the influence of hydrophysical conditions on representation of hydro-optical measurements using the data of the Middle Caspian coastal water exploration. P. 696–704
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Rostovtseva V. V., Izhitskiy A. S., Goncharenko I. V., Konovalov B. V., Zavialov P. O. On the influence of hydrophysical conditions on representation of hydro-optical measurements using the data of the Middle Caspian coastal water exploration. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 696–704. DOI: 10.15372/AOO20210905 [in Russian].
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Rostovtseva V.V., Izhitskiy A.S., Goncharenko I.V., Konovalov B.V. and Zavialov P.O. On the Influence of Hydrophysical Conditions on Representativeness of Hydrooptical Measurements for Coastal Regions of the Middle Caspian Sea as an Example // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 649–657.
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6. Lomakina N. Ya., Lavrinenko A. V. Evaluation of current trends in the monthly mean temperature in the atmospheric boundary layer over Siberia. P. 705–710
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Lomakina N. Ya., Lavrinenko A. V. Evaluation of current trends in the monthly mean temperature in the atmospheric boundary layer over Siberia. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 705–710. DOI: 10.15372/AOO20210906 [in Russian].
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Lomakina N.Ya. and Lavrinenko A.V. Estimation of Current Trends in the Monthly Mean Temperature in the Atmospheric Boundary Layer over Siberia // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 672–677.
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7. Shishigin S. A. Determination of the temperature of air and the Earth's underlying surface in model calculations of methane content in the atmosphere. P. 711–715
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Shishigin S. A. Determination of the temperature of air and the Earth's underlying surface in model calculations of methane content in the atmosphere. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 711–715. DOI: 10.15372/AOO20210907 [in Russian].
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8. Kanev F. Yu., Aksenov V. P., Makenova N. A., Veretekhin I. D. Assessment of the possibility to transfer information by vortex radiation in the presence of noise formed by randomly located dislocations. P. 716–725
Bibliographic reference:
Kanev F. Yu., Aksenov V. P., Makenova N. A., Veretekhin I. D. Assessment of the possibility to transfer information by vortex radiation in the presence of noise formed by randomly located dislocations. // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 716–725. DOI: 10.15372/AOO20210908 [in Russian].
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Kanev F.Yu., Aksenov V.P., Makenova N.A., Veretekhin I.D. Estimation of the Possibility of Information Transfer Using Optical Vortices in the Presence of a Background Formed by an Array of Randomly Located Dislocations // Atmospheric and Oceanic Optics, 2022, V. 35. No. 03. pp. 202–211.
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9. Nosov V. V., Lukin V. P., Kovadlo P. G., Nosov E. V., Torgaev A. V. Intermittency of Kolmogorov and coherent turbulence in the mountain boundary layer (overview). P. 726–749
Bibliographic reference:
Nosov V. V., Lukin V. P., Kovadlo P. G., Nosov E. V., Torgaev A. V. Intermittency of Kolmogorov and coherent turbulence in the mountain boundary layer (overview). // Optika Atmosfery i Okeana. 2021. V. 34. No. 09. P. 726–749. DOI: 10.15372/AOO20210909 [in Russian].
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Nosov V.V., Lukin V.P., Kovadlo P.G., Nosov E.V., Torgaev A.V. Intermittency of Kolmogorov and Coherent Turbulence in the Mountain Atmospheric Boundary Layer (Review) // Atmospheric and Oceanic Optics, 2022, V. 35. No. 03. pp. 266–287.
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10. Information. P. 750