Aerosol Microstructure and Hygroscopic and Absorption Properties in the Atmosphere of Lake Baikal and Its Southern Coastal Territory in Summer 2024

L. R. Izmest’eva, M. V. Moore, S. E. Hampton, C. J. Ferwerda, D. K. Gray, K. H. Woo, H. V. Pislegina, L. S. Krashchuk, S. V. Shimaraeva, and E. A. Silow, “Lake-wide physical and biological trends associated with warming in Lake Baikal,” J. Great Lakes Res. 42, 17 (2016). https://doi.org/10.1016/j.jglr.2015.11.006

Article  Google Scholar 

E. P. Maysyuk, “The role of energy in the ecological state of the Baikal natural territory,” Geogr. Nat. Res. 1, 100–107 (2017). https://doi.org/10.21782/GIPR0206-1619-2017-1(100-107)

Article  Google Scholar 

O. A. Timoshkin, “Coastal zone of the world’s great lakes as a target field for interdisciplinary research and ecosystem monitoring: Lake Baikal (East Siberia),” Limnol. Freshwater Biol. 1, 81–97 (2018). https://doi.org/10.31951/2658-3518-2018-A-1-81

Article  Google Scholar 

V. V. Bufal, “Radiation regime of the Lake Baikal basin and its role in climate formation,” in Climate of Lake Baikal and the Baikal region (Nauka, Moscow, 1966), pp. 34–70 [in Russian].

Google Scholar 

M. N. Shimaraev, L. N, Kuimova, V. N. Sinyukovich, and V. V. Tsekhanovskii, “Manifestation of global climatic changes in Lake Baikal during the 20th century,” Dokl. Earth Sci. 383A (3), 288–291 (2002).

Google Scholar 

M. O. Andreae and P. J. Crutzen, “Atmospheric aerosols: Biogeochemical sources and role in atmospheric chemistry,” Science 276, 1052–1058 (1997). https://doi.org/10.1126/science.276.5315.1052

Article  Google Scholar 

O. A. Timoshkin, D. P. Samsonov, M. Yamamuro, M. V. Moore, O. I. Belykh, V. V. Malnik, M. V. Sakirko, A. A. Shirokaya, N. A. Bondarenko, V. M. Domysheva, G. A. Fedorova, A. I. Kochetkov, A. V. Kuzmin, A. G. Lukhnev, O. V. Medvezhonkova, A. V. Nepo-krytykh, E. M. Pasynkova, A. E. Poberezhnaya, N. V. Potapskaya, N. A. Rozhkova, N. G. Sheveleva, I. V. Tikhonova, E. M. Timoshkina, I. V. Tomberg, E. A. Volkova, E. P. Zaitseva, Yu. M. Zvereva, A. B. Kupchinsky, and N. A. Bukshuk, “Rapid ecological change in the coastal zone of Lake Baikal (East Siberia): Is the site of the world’s greatest freshwater biodiversity in danger?,” J. Great Lakes Res. 42 (3), 487–497 (2016). https://doi.org/10.1016/j.jglr.2016.02.011

Article  Google Scholar 

I. V. Latysheva, A. S. Ivanova, V. L. Makukhin, and V. I. Mordvinov, “Influence of meteorological conditions on spreading and transformation of aerosol and gas components in the Lake Baikal region,” Atmos. Ocean. Opt. 17 (4), 283–285 (2004).

Google Scholar 

V. E. Zuev, V. V. Antonovich, B. D. Belan, E. F. Zhbanov, M. K. Mikushev, M. V. Panchenko, A. V. Podanev, G. N. Tolmachev, and A. V. Shcherbatova, “Phenomenon of circular circulation in the basin of Lake Baikal,” Dokl. Akad Nauk 325 (6), 1146 (1992).

Google Scholar 

A. N. Ankilov, A. S. Kozlov, S. B. Malyshkin, M. V. Panchenko, and V. M. Domysheva, “Characteristics of aerosol-forming compounds measured in the Baikal region: physical properties and dynamics,” Atmos. Ocean. Opt. 20 (11), 907–910 (2007).

Google Scholar 

S. Nasonov, Y. Balin, M. Klemasheva, G. Kokhanenko, M. Novoselov, and I. Penner, “Peculiarities of the vertical structure of atmospheric aerosol fields in the basin of Lake Baikal according to lidar observations,” Atmosphere 14, 837 (2023). https://doi.org/10.3390/atmos14050837

Article  ADS  Google Scholar 

S. Nasonov, Y. Balin, M. Klemasheva, G. Kokhanenko, M. Novoselov, and I. Penner, “Study of atmospheric aerosol in the Baikal mountain basin with shipborne and ground-based lidars,” Remote Sens. 15, 3816 (2023). https://doi.org/10.3390/rs15153816

Article  ADS  Google Scholar 

S. V. Nasonov, Yu. S. Balin, M. G. Klemasheva, G. P. Kokhanenko, amd I. E. Penner, “Ground-based and shipborne lidar studies of aerosol fields of the atmosphere above Lake Baikal,” Limnol. Freshwater Biol. 4, 863–864 (2020). https://doi.org/10.31951/2658-3518-2020-A-4-863

Article  Google Scholar 

Yu. S. Balin, M. G. Klemasheva, G. P. Kokhanenko, S. V. Nasonov, M. M. Novoselov, and I. E. Penner, “Lidar study of the vertical structure of aerosol fields in the atmosphere over Lake Baikal during forest fires,” Opt. Atmos. Okeana 29 (8), 689–693 (2016). https://doi.org/10.15372/AOO20160810

Article  Google Scholar 

M. Kulmala, P. Alekseychik, M. Paramonov, T. Laurila, E. Asmi, A. Arneth, S. Zilitinkevich, and V.-M. Kerminen, “On measurements of aerosol particles and greenhouse gases in Siberia and future research needs,” Boreal Environ. Res. 16, 337–362 (2011).

Google Scholar 

G. S. Zhamsueva, A. S. Zayakhanov, A. V. Starikov, A. L. Dementeva, T. V. Khodzher, and L. P. Golobokova, “Component composition of aerosols and their dynamics in the atmosphere of the Baikal south-eastern coast,” Aerosol Air Qual. Res 24 (2), 230161 (2024). https://doi.org/10.4209/aaqr.230161

Article  Google Scholar 

A. S. Zayakhanov, G. S. Zhamsueva, I. P. Sungrapova, and V. V. Tsydypov, “Features of diurnal variability of ultrafine aerosol in the air of the Baikal coastal zone and arid zone of Mongolia,” Atmos. Ocean. Opt. 31 (3), 257–262 (2018).

Article  Google Scholar 

A. S. Zayakhanov, G. S. Zhamsueva, S. A. Naguslaev, V. V. Tsydypov, S. M. Sakerin, D. M. Kabanov, and M. A. Tashchilin, “The results of investigation of the aerosol optical thickness of the atmosphere in the Baikal region,” Opt. Atmos. Okeana 23 (6), 466–470 (2010).

Google Scholar 

M. Taschilin, I. Yakovleva, S. Sakerin, O. Zorkaltseva, A. Tatarnikov, and E. Scheglova, “Spatiotemporal variations of aerosol optical depth in the atmosphere over Baikal region based on MODIS data,” Atmosphere 12, 1706 (2021). https://doi.org/10.3390/atmosphere12121706

Article  ADS  Google Scholar 

M. V. Panchenko, B. D. Belan, and V. S. Shamanaev, “Aircraft-laboratory of the IAO SB RAS in the study of the lake Baykal environment,” Atmos. Ocean. Opt. 10 (4–5), 289–294 (1997).

Google Scholar 

Z. Z. Pakhakhinova, A. N. Beshentsev, and E. Zh. Garmaev, “Creation of GIS for monitoring of management of nature use in the Lake Baikal basin,” Opt. Atmos. Okeana 31 (8), 647–651 (2018). https://doi.org/10.15372/AOO20180808

Article  Google Scholar 

D. Lavoue, C. Liousse, H. Cachier, B. J. Stocks, and J. G. Goldammer, “Modeling of carbonaceous particles emitted by boreal and temperate wildfires at northern latitudes,” J. Geophys. Res. 105, 26871–26890 (2000). https://doi.org/10.1029/2000JD900180

Article  ADS  Google Scholar 

J. E. Lee, K. Gorkowski, A. G. Meyer, K. B. Benedict, A. C. Aiken, and M. K. Dubey, “Wildfire smoke demonstrates significant and predictable black carbon light absorption enhancements,” Geophys. Rev. Lett. 49 (14), e2022GL099334 (2022). https://doi.org/10.1029/2022GL099334

V. V. Pol’kin, ”Accounting for the dependence of the size boundaries of photoelectric counters on the complex refractive index of the material of aerosol particles,” Opt. Atmos. Okeana 30 (5), 442–446 (2017). https://doi.org/10.15372/AOO20170514

Article  Google Scholar 

F. Kasten, “Visibility forecast in the phase of precondensation,” Tellus 21 (3), 631–635 (1969).

Article  ADS  Google Scholar 

G. Hanel, “The properties of atmospheric aerosol particles as function of relative humidity at the thermodynamic equilibrium with surrounding moist air,” Adv. Geophys. 19, 73–188 (1976).

Article  ADS  Google Scholar 

A. G. Laktionov, Equilibrium Heterogeneous Condensation (Gidrometeoizdat, Leningrad, 1988) [in Russian].

Google Scholar 

V. V. Pol’kin, M. V. Panchenko, and S. A. Terpugova, “Condensation activity of different-size particles of atmospheric aerosol using photoelectric counter measurements,” Atmos. Ocean. Opt. 35 (2), 133–141 (2022).

Article  Google Scholar 

M. V. Panchenko, M. A. Sviridenkov, S. A. Terpugova, and V. S. Kozlov, “Active spectral nephelometry in the study of microphysical characteristics of submicron aerosol,” Atmos. Ocean. Opt. 17 (5-6), 378–386 (2004).

Google Scholar 

A. D. A. Hansen, H. Rosen, and T. Novakov, “The aethalometer—an instrument for the real-time measurement of optical absorption by aerosol particles,” Sci. Total Environ. 36, 191–196 (1984). https://doi.org/10.1016/0048-9697(84)90265-1

Article  ADS  Google Scholar 

A. F. Stein, R. R. Draxler, G. D. Rolph, B. J. B. Stunder, M. D. Cohen, and F. Ngan, “NOAA’S HYSPLIT atmospheric transport and dispersion modeling system,” Bull. Am. Meteorol. Soc. 96 (12), 2059–2077 (2015). https://doi.org/10.1175/BAMS-D-14-00110.1

Article  ADS  Google Scholar 

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