Content of issue 08, volume 23, 2010

1. Tvorogov S. D., Rodimova O. B. Centre-of-mass problem in the spectral line shape task. II. Wave function and density matrix of the light absorbing molecule after optically active collision. P. 633-639
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Tvorogov S. D., Rodimova O. B. Centre-of-mass problem in the spectral line shape task. II. Wave function and density matrix of the light absorbing molecule after optically active collision. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 633-639 [in Russian].
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2. Yankovskii V. A., Babaev A. S. Photolysis of O3 at Hartley, Chappuis, Huggins, and Wuff bands in the middle atmosphere: a vibrational kinetics of oxygen molecules O2(X3S-g, v<=35). P. 640-649
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Yankovskii V. A., Babaev A. S. Photolysis of O3 at Hartley, Chappuis, Huggins, and Wuff bands in the middle atmosphere: a vibrational kinetics of oxygen molecules O2(X3S-g, v<=35). // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 640-649 [in Russian].
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Yankovsky V.A. and Babaev A.S. Photolysis of O3 at Hartley, Chappuis, Huggins, and Wulf Bands in the Middle Atmosphere: Vibrational Kinetics of Oxygen Molecules O2 (X3 Σ-g, ν≤ 35). // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 6–16.
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3. Firsov K. M., Chesnokova T. Yu. Sensitivity of downward longwave radiative fluxes to water vapour continual absorption. P. 650-655
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Firsov K. M., Chesnokova T. Yu. Sensitivity of downward longwave radiative fluxes to water vapour continual absorption. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 650-655 [in Russian].
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Firsov K.M. and Chesnokova T.Yu. Sensitivity of Downward Long-Wave Radiative Fluxes to Water Vapor Continuum Absorption // Atmospheric and Oceanic Optics, 2010, V. 23. No. 06. pp. 462–468.
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4. Kalinin K. V. Calculation of energy levels of the hydrogen molecule, using the moment constant summability method with specialized weight. P. 656-659
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Kalinin K. V. Calculation of energy levels of the hydrogen molecule, using the moment constant summability method with specialized weight. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 656-659 [in Russian].
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Kalinin K.V. Calculation of Hydrogen Molecule Energy Levels Using the Moment Constant Summability Method with Specialized Weight. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 17–21.
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5. Cherkasov M. R. Effects of the hyperfine splitting of levels in the pressure broadening of the methyl chloride rotational transitions. P. 660-665
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Cherkasov M. R. Effects of the hyperfine splitting of levels in the pressure broadening of the methyl chloride rotational transitions. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 660-665 [in Russian].
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Cherkasov M.R. Effects of Hyperfine Splitting of Levels in the Pressure Broadening of the Methyl Chloride Rotational Transitions. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 22–29.
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6. Geints Yu. E., Zemlyanov A. A., Panina E. K. Spatial and energy characteristics of nanofields in the vicinity of isolated spherical particles. P. 666-674
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Geints Yu. E., Zemlyanov A. A., Panina E. K. Spatial and energy characteristics of nanofields in the vicinity of isolated spherical particles. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 666-674 [in Russian].
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Geints Yu.E., Zemlyanov A.A., and Panina E.K. Spatial and Energy Characteristics of Nanofields in the Vicinity of Isolated Spherical Particles. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 39–46.
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7. Rakhimov R. F., Makienko E. V., Panchenko M. V. Optical-microphysical properties of mixed smokes from several separated sources. P. 675-683
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Rakhimov R. F., Makienko E. V., Panchenko M. V. Optical-microphysical properties of mixed smokes from several separated sources. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 675-683 [in Russian].
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Rakhimov R.F., Makienko E.V., and Panchenko M.V. Optical–Microphysical Properties of Mixed Smokes from a Few Spatially Separated Sources. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 47–55.
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8. Afonin S. V. To the question of applicability of space-derived meteorological data for atmospheric correction of satellite IR measurements. P. 684-690
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Afonin S. V. To the question of applicability of space-derived meteorological data for atmospheric correction of satellite IR measurements. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 684-690 [in Russian].
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Afonin S.V. Applicability of Space-Derived Meteorological Data to Atmospheric Correction of Satellite Infrared Measurements. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 56–63.
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9. Sakerin S. M., Pavlov A. N., Bukin O. A., Kabanov D. M., Kornienko G. I., Pol'kin V. V., Stolyarchuk S. Yu., Turchinovich Yu. S., Shmirko K. A., Maior A. Yu. Results of integrated aerosol experiment in the continent-ocean transition zone (Primorye and the Sea of Japan). Part 1. Variations of atmospheric aerosol optical depth and vertical profiles. P. 691-699
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Sakerin S. M., Pavlov A. N., Bukin O. A., Kabanov D. M., Kornienko G. I., Pol'kin V. V., Stolyarchuk S. Yu., Turchinovich Yu. S., Shmirko K. A., Maior A. Yu. Results of integrated aerosol experiment in the continent-ocean transition zone (Primorye and the Sea of Japan). Part 1. Variations of atmospheric aerosol optical depth and vertical profiles. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 691-699 [in Russian].
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Sakerin S.M., Pavlov A.N., Bukin O.A., Kabanov D.M., Kornienko G.I., Pol’kin V.V., Stolyarchuk S.Yu., Turchinovich Yu.S., Shmirko K.A., and Mayor A.Yu. Results of an Integrated Aerosol Experiment in the Continent–Ocean Transition Zone (Primorye and the Sea of Japan); Part 1: Variations of Atmospheric Aerosol Optical Depth and Vertical Profiles. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 64–73.
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10. Zhuravleva T. B., Kabanov D. M., Sakerin S. M. On daytime variations of atmospheric aerosol optical depth and aerosol radiative forcing. P. 700-709
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Zhuravleva T. B., Kabanov D. M., Sakerin S. M. On daytime variations of atmospheric aerosol optical depth and aerosol radiative forcing. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 700-709 [in Russian].
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Zhuravleva T.B., Kabanov D.M., and Sakerin S.M. On Daytime Variations of Atmospheric Aerosol Optical Depth and Aerosol Radiative Forcing // Atmospheric and Oceanic Optics, 2010, V. 23. No. 06. pp. 528–537.
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11. Frolkis V. A., Karol I. L. Modeling of the influence of the stratospheric aerosol screen parameter variation on the efficiency of the global greenhouse climate warming compensation. P. 710-722
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Frolkis V. A., Karol I. L. Modeling of the influence of the stratospheric aerosol screen parameter variation on the efficiency of the global greenhouse climate warming compensation. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 710-722 [in Russian].
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Frol’kis V.A. and Karol’ I.L. Simulation of the Effect of Stratospheric Aerosol Dimming Parameters on the Efficiency of Offsetting Global Greenhouse Climate Warming. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 74–87.
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12. Afanas'ev A. L., Banakh V. A., Rostov A. P. Estimate of wind velocity in the atmosphere based on the analysis of turbulent distortions of laser beam images registered by video camera. P. 723-729
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Afanas'ev A. L., Banakh V. A., Rostov A. P. Estimate of wind velocity in the atmosphere based on the analysis of turbulent distortions of laser beam images registered by video camera. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 723-729 [in Russian].
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Afanas’ev A.L., Banakh V.A., and Rostov A.P. Estimate of Wind Velocity in the Atmosphere Based on an Analysis of Turbulent Distortions of Laser Beam Images Registered by Video Camera. // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 88–94.
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13. Kukushkin A. S., Voskresenskaya E. N. The features of transparency field generation in the upper sea layer of the North-West Black Sea in winter-spring period. P. 730-736
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Kukushkin A. S., Voskresenskaya E. N. The features of transparency field generation in the upper sea layer of the North-West Black Sea in winter-spring period. // Optika Atmosfery i Okeana. 2010. V. 23. No. 08. P. 730-736 [in Russian].
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Kukushkin A.S., Voskresenskaya E.N., and Maslova V.N. The Features of Transparency Field Generation in the Upper Sea Layer of the Northwestern Black Sea in the Winter–Spring . // Atmospheric and Oceanic Optics, 2011, V. 24. No. 01. pp. 95–101.
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