Content of issue 10, volume 34, 2021

1. Chentsov A. V., Chesnokova T. Yu., Voronin B. A., Yurchenko S. N. Estimation of H2O absorption lines contribution to the atmospheric transmission in ultraviolet spectral region. P. 753–758
Bibliographic reference:
Chentsov A. V., Chesnokova T. Yu., Voronin B. A., Yurchenko S. N. Estimation of H2O absorption lines contribution to the atmospheric transmission in ultraviolet spectral region. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 753–758. DOI: 10.15372/AOO20211001 [in Russian].
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Chentsov A.V., Chesnokova T.Yu., Voronin B.A. and Yurchenko S.N. Estimation of H2O Absorption Line Contributions to Atmospheric Transmission in the Ultraviolet Spectral Region // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 547–552.
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2. Bаbushkin P. A., Matvienko G. G., Oshlakov V. K. Determination of the elemental composition of aerosol by femtosecond laser-induced breakdown spectroscopy. P. 759-764
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Bаbushkin P. A., Matvienko G. G., Oshlakov V. K. Determination of the elemental composition of aerosol by femtosecond laser-induced breakdown spectroscopy. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 759-764. DOI: 10.15372/AOO20211002 [in Russian].
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Babushkin P.A., Matvienko G.G. and Oshlakov V.K. Determination of the Elemental Composition of Aerosol by Femtosecond Laser-Induced Breakdown Spectroscopy // Atmospheric and Oceanic Optics, 2022, V. 35. No. 01. pp. 19–26.
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3. Makarov V. N., Torgovkin N. V. Geochemistry of particulate matter in the winter atmosphere of Yakutsk (by snow cover). P. 765–768
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Makarov V. N., Torgovkin N. V. Geochemistry of particulate matter in the winter atmosphere of Yakutsk (by snow cover). // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 765–768. DOI: 10.15372/AOO20211003 [in Russian].
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4. Smalikho I. N., Banakh V. A., Sherstobitov A. M. Determination of turbulence parameters from the spectra of vertical wind velocity component measured by a pulsed coherent Doppler lidar. Part I. Method. P. 769–778
Bibliographic reference:
Smalikho I. N., Banakh V. A., Sherstobitov A. M. Determination of turbulence parameters from the spectra of vertical wind velocity component measured by a pulsed coherent Doppler lidar. Part I. Method. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 769–778. DOI: 10.15372/AOO20211004 [in Russian].
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5. Smalikho I. N., Banakh V. A., Sherstobitov A. M., Falits A. V. Determination of turbulence parameters from the spectra of vertical wind velocity component measured by a pulsed coherent Doppler lidar. Part II. Experiment at the BEO of the IAO SB RAS. P. 779–791
Bibliographic reference:
Smalikho I. N., Banakh V. A., Sherstobitov A. M., Falits A. V. Determination of turbulence parameters from the spectra of vertical wind velocity component measured by a pulsed coherent Doppler lidar. Part II. Experiment at the BEO of the IAO SB RAS. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 779–791. DOI: 10.15372/AOO20211005 [in Russian].
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6. Zhuravleva T. B., Nasrtdinov I. M. Impact of microstructure and horizontal heterogeneity of broken cirrus clouds on mean solar radiation fluxes in the visible spectral region: results of numerical simulation. P. 792–802
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Zhuravleva T. B., Nasrtdinov I. M. Impact of microstructure and horizontal heterogeneity of broken cirrus clouds on mean solar radiation fluxes in the visible spectral region: results of numerical simulation. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 792–802. DOI: 10.15372/AOO20211006 [in Russian].
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Zhuravleva T.B. and Nasrtdinov I.M. Effect of Microstructure and Horizontal Inhomogeneity of Broken Cirrus Clouds on Mean Solar Radiative Fluxes in the Visible Wavelength Region: Results of Numerical Simulation // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 678–688.
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7. Gubenko I. M., Rubinshtein K. G. An example of data assimilation from several lightning detection networks in numerical weather forecast. P. 803–807
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Gubenko I. M., Rubinshtein K. G. An example of data assimilation from several lightning detection networks in numerical weather forecast. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 803–807. DOI: 10.15372/AOO20211007 [in Russian].
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Gubenko I.M. and Rubinstein K.G. An Example of Assimilation of Data from Several Lightning Detection Networks in a Numerical Weather Forecast // Atmospheric and Oceanic Optics, 2022, V. 35. No. 01. pp. 65–71.
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8. Bloshchinskiy V. D., Filei A. A., Kholodov E. I. Retrieval of water vapor content in atmospheric column from Electro-L No. 3 spacecraft data using neural networks. P. 808–811
Bibliographic reference:
Bloshchinskiy V. D., Filei A. A., Kholodov E. I. Retrieval of water vapor content in atmospheric column from Electro-L No. 3 spacecraft data using neural networks. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 808–811. DOI: 10.15372/AOO20211008 [in Russian].
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Bloshchinskiy V.D., Filei A.A. and Kholodov E.I. Retrieval of Total Column Water Vapor from Electro-L No. 3 Satellite Data Using Neural Networks // Atmospheric and Oceanic Optics, 2022, V. 35. No. 01. pp. 72–76.
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9. Kalchikhin V. V., Kobzev A. A., Tikhomirov A. A., Filatov D. E. Element by element calibration method for the optoelectronic precipitation gage. P. 812–816
Bibliographic reference:
Kalchikhin V. V., Kobzev A. A., Tikhomirov A. A., Filatov D. E. Element by element calibration method for the optoelectronic precipitation gage. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 812–816. DOI: 10.15372/AOO20211009 [in Russian].
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Kalchikhin V.V., Kobzev A.A., Tikhomirov A.A. and Filatov D.E. Element-by-Element Calibration of an Optoelectronic Precipitation Gage // Atmospheric and Oceanic Optics, 2022, V. 35. No. 01. pp. 77–80.
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10. Bogushevich A. Ya. Minimization of systematic errors of the sonic thermometer due to signal time delays and temperature changes in the design. P. 817–824
Bibliographic reference:
Bogushevich A. Ya. Minimization of systematic errors of the sonic thermometer due to signal time delays and temperature changes in the design. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 817–824. DOI: 10.15372/AOO20211010 [in Russian].
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Bogushevich A.Ya. Minimization of Systematic Errors of an Ultrasonic Thermometer Due to Signal Time Delays and Temperature Variations in the Design // Atmospheric and Oceanic Optics, 2021, V. 34. No. 06. pp. 730–737.
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11. Troitskii V. O. Second harmonic generation optimization under limited power density of fundamental radiation. Part 1. P. 825–833
Bibliographic reference:
Troitskii V. O. Second harmonic generation optimization under limited power density of fundamental radiation. Part 1. // Optika Atmosfery i Okeana. 2021. V. 34. No. 10. P. 825–833. DOI: 10.15372/AOO20211011 [in Russian].
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Troitskii V.O. Second Harmonic Generation Optimization under Limited Power Density of Fundamental Radiation: Part 1 // Atmospheric and Oceanic Optics, 2022, V. 35. No. 01. pp. 81–88.
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12. Information. P. 834