Вестник МГТУ, 2026, Т. 29, № 1.
Вестник МГТУ. 2026. Т. 29, № 1. С. 64—74. DOI : https://doi.org/10 .21443/1560-9278-2026-29-1-64-74 Hall D. K., Riggs G. A., Salomonson V. V. Development of methods for mapping global snow cover using Moderate Resolution Imaging Spectroradiometer data // Remote Sensing of Environment. 1995. Vol. 54, Iss. 2. P. 127—140. DOI: https://doi.org/10.1016/0034-4257(95)00137-P. Janssen N. A. H., Fischer P., Marra M., Ameling C. [et al.]. Short-term effects of PM2.5, PM10 and PM2.5-10 on daily mortality in the Netherlands // Science of the Total Environment. 2013. Vol. 463—464. P. 20—26. DOI: http://dx.doi.org/10.1016/j.scitotenv.2013.05.062. Karimian H., Li Q., Li C., Jin L. [et al.]. An improved method for monitoring fine particulate matter mass concentrations via satellite remote sensing // Aerosol and Air Quality Research. 2016. Vol. 16. P. 1081—1092. DOI: https://doi.org/10.4209/aaqr.2015.06.0424. Kour R., Patel N., Krishna A. P. Development of a new thermal snow index and its relationship with snow cover indices and snow cover characteristic indices // Arabian Journal of Geosciences. 2016. Vol. 9. Article number: 71. DOI: https://doi.org/10.1007/s12517-015-2143-6. Maji K. J., Dikshit A. K., Deshpande A. Disability-adjusted life years and economic cost assessment of the health effects related to PM25 and PM10 pollution in Mumbai and Delhi, in India from 1991 to 2015 // Environmental Science and Pollution Research. 2017. Vol. 24. P. 4709—4730. DOI: https://doi.org/10.1007/ s11356-016-8164-1. Negi H. S., Kulkarni A. V., Semwal B. S. Study of contaminated and mixed objects snow reflectance in Indian Himalaya using spectroradiometer // International Journal of Remote Sensing. 2009. Vol. 30, Iss. 2. P. 315—325. DOI: https://doi.org/10.1080/01431160802261197. Pozhitkov R. Y., Tigeev A. A., Moskovchenko D. V. Estimation of dust depositions in snow cover using Earth’s remote sensing data: Example of Nizhnevartovsk // Atmospheric and Oceanic Optics. 2021. Vol. 34. P. 19—25. DOI: https://doi.org/10.1134/S1024856021010103. Reche C., Moreno T., Amato F., Viana M. [et al.]. A multidisciplinary approach to characterise exposure risk and toxicological effects of PM10and PM25 samples in urban environments // Ecotoxicology and Environmental Safety. 2012. Vol. 78. P. 327—335. DOI: https://doi.org/10.1016/j.ecoenv.2011.11.043. Shimamura Y., Izumi T., Matsuyama H. Evaluation of a useful method to identify snow-covered areas under vegetation —comparisons among a newly proposed snow index, normalized difference snow index, and visible reflectance // International Journal of Remote Sensing. 2006. Vol. 27, Iss. 21. P. 4867—4884. DOI: https://doi.org/10.1080/01431160600639693. Sicard P., Khaniabadi Y. O., Perez S., Gualtieri M. [et al.]. Effect of O3, PM10 and PM2.5 on cardiovascular and respiratory diseases in cities of France, Iran and Italy // Environmental Science and Pollution Research. 2019. Vol. 26. P. 32645—32665. DOI: https://doi.org/10.1007/s11356-019-06445-8. References Alekseev, V. R. 2013. Snow cover as an indicator of cumulative land pollution. Ice and Snow, 53(1), pp. 127—140. EDN: QBXFJP. (In Russ.) Borovlev, A. E. 2020. Studies of the content of fine particles in the atmospheric air of the residential area of Belgorod. Regional Geosystems , 44(1), pp. 97—103. DOI: https://doi.org/10.18413/2712-7443-2020-44-1-97-103. EDN: KDKELV. (In Russ.) Kasimov, N. S., Kosheleva, N. E., Vlasov, D. V., Terskaya, E. V. 2012. Geochemistry of snow cover in the eastern district of Moscow. Lomonosov Geography Journal, 4, pp. 14—24. EDN: PJQDER. (In Russ.) May, I. V., Zagorodnov, S. Yu. 2024. Fine particles in ambient air of the cities included in the clean air federal project as health risk factors and control objects. Public Health and Life Environment - PH&LE, 32(12), pp. 39—47. DOI: https://doi.org/10.35627/2219-5238/2024-32-12-39-47. EDN: MJLUEW. (In Russ.) Sukhinin, A. I., Vorob'eva, M., Okhotkina, E. A. 2011. Space monitoring of the Siberian snow cover according to the MODIS radiometer. Vestnik SIBSAU. Aerospace Tehnologies and Control Systems, 4(37), pp. 90—96. EDN: OXPSQN. (In Russ.) Tigeev, A. A., Fakhretdinov, A. V., Pozhitkov, R. Yu. 2022. Dust load and spectral characteristics of snow cover in oil and gas producing regions (on the example of Surgut). Environmental Protection in Oil and Gas Complex , 6(309), pp. 45—51. DOI: https://doi.org/10.33285/2411-7013-2022-6(309)-45-51. EDN: VCMPMM. (In Russ.) Titkova, T. B., Kitaev, L. M., Vinogradova, V. V. 2017. Short-period variability of snow cover periods according to MODIS data in northern Eurasia under modern climate conditions. Sovremennye Problemy Distantsionnogo Zondirovaniya Zemli iz Kosmosa, 14(5), pp. 223—238. DOI: https://doi.org/10.21046/2070-7401-2017-14-5- 223-238. EDN: ZTMXPZ. (In Russ.) Tunakova, Yu. A., Novikova, S. V., Shagidullin, A. R., Shagidullin, R. R. 2018. Artificial neural networks for calculation of microparticle concentrations (PM2.5 and PMi0) in atmospheric air based on the results of measurement of the total amount of suspended particles (on the example of Kazan). Russian Journal o f Applied Ecology , 1(13), pp. 32—37. EDN: OUKSUR. (In Russ.) Ecogeochemistry of urban landscapes. 1995. Ed. N. S. Kasimov. Moscow. (In Russ.) 73
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