Seasonal and Daily Variations in the Coefficient of Optical Radiation Extinction Due to Midges in the Surface Air in Western Siberia in Summer–Autumn 2018

N. N. Shchelkanov and V. N. Uzhegov, “Estimates of a midge contribution to the extinction of optical radiation in background summer conditions of Western Siberia,” Atmos. Ocean. Opt. 30 (5), 446–450 (2017).

Article  Google Scholar 

N. N. Shchelkanov, “Daily variation in the radiation extinction coefficient due to midges and its dependence on meteorological parameters of the atmosphere in background summer conditions of Western Siberia,” Atmos. Ocean. Opt. 32 (1), 80–84 (2019).

Article  Google Scholar 

N. P. Mezenev, “External effects on the activity of mosquitos and its daily variation in polar regions,” Parazitologiya 3, 254–260 (1971).

Google Scholar 

S. I. Bobrova, “Fauna and ecology of midges (diptera, simuliidae) of the Anadyr river basin, Magadan region,” Parazitologiya 7 (5), 457–464 (1973).

Google Scholar 

T. K. Makatov, Avtoref. of the Candidate’s Dissertation in Biology (GNU VNIIVEA, Tyumen, 2008).

A. D. Reshetnikov, Z. S. Prokop’ev, A. I. Barashkova, and K. E. Semenova, “Daily activity of components of midges in southeastern Yakutia,” Izv. Samarskogo Nauchnogo Tsentra RAN 11 (1), 147–148 (2009).

Google Scholar 

Yu. F. Petrov and S. V. Egorov, “The ecology of culicidae and simuliidae—a vectors of parasitic diseases of animals in the central region of non-black soil zones of Russian Federation,” Rossiiskii Parazitologicheskii Zh., No. 4, 52–54 (2011).

Yu. F. Petrov and S. V. Egorov, “Biotopical distribution of gnats (diptera, simuliidae) in the center of non-black soil zone of Russia,” Aktual’nye Voprosy Veterinarnoi Biol., No. 1, 47–49 (2012).

S. V. Egorov, Avtoref. of the Doctoral Dissertation in Biology (Ivanovo State Academy of Agricultural Sciences named after D.K. Belyaev, Moscow, 2013).

A. I. Barashkova, Doctoral Dissertation in Biology (YaNIISKh, Yakutsk, 2016).

O. A. Fedorova and A. A. Gavrichkin, “Blood-sucking midges (diptera, simuliidae) of southern taiga Tyumen region,” Vestn. Orenburgskogo Gos. Univ. 2, 94–97 (2016).

Google Scholar 

A. A. Surkov, A. S. Kontsevaya, and V. D. Yurchenko, “Species diversity and daily activity of blood-sucking mosquitoes in the Gomel region,” Molodoi Uchenyi, No. 37 (275), 106–108 (2019).

Google Scholar 

Yu. A. Pkhalagov, V. N. Uzhegov, and N. N. Shchelkanov, “Automated multiwave meter of spectral transmission of the ground layer of the atmosphere,” Atmos. Ocean. Opt. 5 (6), 423–425 (1992).

Google Scholar 

N. N. Shchelkanov, “Methods for calculation of random errors of the parameters of environment from experimental data,” Opt. Atmos. Okeana 25 (9), 815–821 (2012).

Google Scholar 

V. L. Filippov, A. S. Makarov, and V. P. Ivanov, “Development of regional semiempirical models of optical parameters of the atmosphere,” Dokl. Akad. Nauk SSSR 265 (6), 1353–1356 (1982).

ADS  Google Scholar 

V. E. Zuev and M. V. Kabanov, Modern Problems of Atmospheric Optics. Vol. 4. Optics of Atmospheric Aerosols (Gidrometeoizdat, Leningrad, 1987) [in Russian].

N. N. Shchelkanov and Yu. A. Pkhalagov, “Two-parameter model of aerosol attenuation for atmospheric hazes,” Atmos. Ocean. Opt. 12 (12), 1039–1040 (1999).

Google Scholar 

N. N. Shchelkanov, “Model of spectral course of aerosol attenuation coefficient for meteorological range of visibility more 15 km,” Proc. SPIE—Int. Soc. Opt. Eng. 11916 (2021).

N. N. Shchelkanov, “Model of the spectral behavior of the aerosol attenuation coefficient in the surface air layer at a meteorological visibility range of more than 10 km,” in Abstracts of the XIV Siberian Meeting and the School of Young Scientists on Climate and Environmental Monitoring, Ed by E.A. Golovatskaya (Tomsk, 2021), pp. 216–219 [in Russian]

Comments (0)

No login
gif