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Trace Element Distribution in the Snow Cover of Different Functional Zones in Berezniki-Solikamsk Industrial Hub, Russia

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The current study considered the distribution of trace elements in snow cover taking into account the functional zoning of the territory of Berezniki-Solikamsk industrial hub, Perm Region, Russia. The concentrations of 22 trace elements were determined in the dissolved phase of snowmelt using ICP-MS method. On the basis of on the background approach, it was found that Ni, Se, Cu, and Sn are actively accumulated in the snow cover. Snowmelt surface runoff during snow melting period significantly contributes to the total watershed discharge of rivers; therefore, the compliance with the Russian fishery quality standards was assessed. It was found that meltwater is the source of Cu, Mn, Se, Zn, V in surface waters. Significant concentrations of Pb, Cd, W, As, Se in snow are characteristic of conditionally background sites in comparison with average values of global concentrations of dissolved trace elements in river waters, and Se, W, Pb, Ni, As, Cd are characteristic of all functional zones. This study presented the possible sources of priority pollutants. The greatest technogenic impact was observed in the area of transport infrastructure development. Upon that, recreational and residential functional zones also experience significant anthropogenic impact. In order to create a comfortable and healthy urban environment it is necessary to implement the measures to restore these areas.
Rocznik
Strony
28--39
Opis fizyczny
Bibliogr. 38 poz., rys., tab.
Twórcy
  • Natural Science Institute, Perm State University, Genkel St. 4, 614990 Perm, Russia
  • Natural Science Institute, Perm State University, Genkel St. 4, 614990 Perm, Russia
  • Natural Science Institute, Perm State University, Genkel St. 4, 614990 Perm, Russia
autor
  • Natural Science Institute, Perm State University, Genkel St. 4, 614990 Perm, Russia
Bibliografia
  • 1. Baitimirova E.A., Mikheeva E.V., Bespamyatnykh E.N., Donnik I.M., Krivonogova A.S. 2016. Evaluation of heavy metal pollution in the recreational areas of the metropolis (BY the example of Yekaterinburg). Agrarny vestnik Urala, 146(4), 71–77 (in Russian).
  • 2. Belkin P.A. 2018. Сharacteristics of technogenic transformation of the chemical composition of spring runoff in the salt mining area by the example of the Verkhnekamskoye deposit. Vestnik of the Perm University. Geology, 17(3), 297–306 (in Russian).
  • 3. Custodio M., Fow A., Peñaloza R., Chanamé F., Cano D. 2021. Evaluation of surface sediment quality in rivers with fish farming potential (Peru) using indicators of contamination, accumulation and ecological risk of heavy metals and arsenic. Journal of Ecological Engineering, 22(5), 78–87.
  • 4. Fordyce F.M. 2013. Selenium deficiency and toxicity in the environment. In: Selinus O. (ed.), Essentials of Medical Geology: Rev Edn, British Geological Survey, 375–419.
  • 5. Gordeev V.V. & Lisitzin A.P. 2014. Geochemical interaction between the freshwater and marine hydrospheres. Russian Geology and Geophysics, 55(5–6), 562–581 (in Russian).
  • 6. Grebenschikova V.I. 2013. Geochemical specificity of the snow water composition in some cities of Irkutsk region. Water: chemistry and ecology, 2, 20–25 (in Russian).
  • 7. Hakanson L. 1980. An ecological risk index for aquatic pollution control.a sedimentological approach. Water Research, 14(8), 975–1001.
  • 8. Jiao X., Teng Y., Zhan Y., Wu J., Lin X. 2015 Soil heavy metal pollution and risk assessment in Shenyang industrial district, Northeast China. PLoS ONE 10(5): e0127736. DOI: 10.1371/journal.pone.0127736
  • 9. Jiang X.Q., Mei X.D., Feng D. 2016.Air pollution and chronic airway diseases: what should people know and do? Journal of Thoracic Disease, 8(1), E31–E40. DOI: 10.3978/j.issn.2072–1439.2015.11.50
  • 10. Karfidova E.A. & Sizov A.P. 2020. Consideration of the impact of technogenesis in the design of a specially protected natural area of landscape type of local importance (on the example of the Solikamsk urban district). Geoecology. Engineering Geology, Hydrogeology, Geocryology, 1, 22–27. DOI: 10.31857/S0869780920010056 (in Russian).
  • 11. Khayrulina E.A. 2014. Technogenic transformation of landscape-geochemical processes in the potassium-magnesium salt mining area. Theoretical and Applied Ecology, 3, 41–45 (in Russian).
  • 12. Khayrulina E.A. & Ushakova E.S. 2020. Particularities of the development of the macro component composition of the snow cover in a large center of the potash industry, the city of Berezniki. Regional Environmental Issues, 3, 28–38 (in Russian).
  • 13. La Frenierre J. & Mark B.G. 2014. A review of methods for estimating the contribution of glacial meltwater to total watershed discharge. Prog. Phys. Geogr., 38, 173–200.
  • 14. Lebedev S.V. & Agafonova E.K. 2017. Ecogeochemical estimation of environmental pollution by monitoring data of heavy metals contamination in soil and snow cover (at the example of Vasileostrovsky district of Saint Petersburg). Vestnik SPbSU. Earth Sciences, 62(4), 357–369. DOI: 10.21638/11701/spbu07.2017.403 (in Russian).
  • 15. Manisalidis I., Stavropoulou E., Stavropoulos A., Bezirtzoglou E. 2020. Environmental and Health Impacts of Air Pollution: A Review. Front Public Health, 8(14). DOI: 10.3389/fpubh.2020.00014
  • 16. Mason R.P., Soerensen A.L., Di Mento B.P., Balcom P.H. 2018. The global marine selenium cycle: Insights from measurements and modeling. Global Biogeochemical Cycles, 32, 1720–1737. DOI: 10.1029/2018GB006029.
  • 17. Meland S., Borgstrøm R., Heier L.S., Rosseland B.O., Lindholm O., Salbu B. 2010. Chemical and ecological effects of contaminated tunnel wash water runoff to a small Norwegian stream Sci. Total Environ., 408(19), 4107–4117.
  • 18. Moghadas S., Paus K.H., Muthanna T.M., Herrmann I., Marsalek J., Viklander M. 2015. Accumulation of Traffic-Related Trace Metals in Urban Winter-Long Roadside Snowbanks. Water Air Soil Pollut, 226(404). DOI: 10.1007/s11270–015–2660–7
  • 19. Moiseenko T.I. & Gashkina N.A. 2016. Bioaccumulation of mercury in fish as indicator of water pollution. Geochem. Int, 54, 485–493. DOI: 10.1134/S0016702916060045
  • 20. Moskovchenko D., Pozhitkov R., Zakharchenko A., Tigeev A. 2021. Concentrations of Major and Trace Elements within the Snowpack of Tyumen, Russia. Minerals 11, 709. DOI: 10.3390/min11070709
  • 21. Müller A., Österlund H., Marsalek J., Viklander M. 2020. The pollution conveyed by urban runoff: A review of sources. Science of The Total Environment, 709(136125). DOI: 10.1016/j.scitotenv.2019.136125.
  • 22. Nkansah M.A., Darko G., Dodd M., Opoku F., Essuman T.B., Antwi-Boasiako J. 2017. Assessment of pollution levels, potential ecological risk and human health risk of heavy metals/ metalloids in dust around fuel filling stations from the Kumasi Metropolis, Ghana, Cogent Environmental Science, 3, 1412153.
  • 23. Pey J., Revuelto J., Moreno N., Alonso-González E., Bartolomé M., Reyes J., Gascoin S., López-Moreno J.I. 2020. Snow Impurities in the Central Pyrenees: From Their Geochemical and Mineralogical Composition towards Their Impacts on Snow Albedo. Atmosphere, 11, 937. DOI: 10.3390/atmos11090937
  • 24. Radomskaya V.I., Yusupov D.V., Pavlova L.M., Sergeeva A.G. 2018. Multivariate statistical analysis of elements content in snow cover in Blagoveshchensk. Regional Ecology, 2(52), DOI: 10.30694/1026–5600–2018–2-15–28
  • 25. Report “On the state and environmental protection of the Perm Territory in 2020”, available at: http://www.permecology.ru
  • 26. Shevchenko V.P., Pokrovsky O.S., Vorobyev S.N., Krickov I.V., Manasypov R.M., Politova N.V., Kopysov S.G., Dara O.M., Auda Y., Shirokova L.S., Kolesnichenko L.G., Zemtsov V.A., Kirpotin S.N. 2017. Impact of snow deposition on major and trace element concentrations and elementary fluxes in surface waters of the Western Siberian Lowland across a 1700 km latitudinal gradient. Hydrol. Earth Syst. Sci., 21, 5725–5746, DOI: 10.5194/hess-21–5725–2017.
  • 27. Schmale J., Flanner M., Kang S. et al. 2017. Modulation of snow reflectance and snowmelt from Central Asian glaciers by anthropogenic black carbon. Sci Rep, 7, 40501. DOI: 10.1038/srep40501
  • 28. Siudek P., Frankowski M., Siepak J. 2015. Trace element distribution in the snow cover from an urban area in central Poland. Environmental monitoring and assessment, 187(5), 225.
  • 29. Thamban M. & Thakur R.C. 2013. Trace metal concentrations of surface snow from Ingrid Christensen Coast, East Antarctica – spatial variability and possible anthropogenic contributions. Environ Monit Assess, 185, 2961–2975.
  • 30. Tomlinson D.L., Wilson J.G., Harris C.R., Jeffrey D.W. 1980. Problems in the assessment of heavy-metal levels in estuaries and the formation of a pollution index. Helgolander Meeresunters, 33, 566–575.
  • 31. Trifonova T.A., Podolets A.A., Selivanov O.G., Martsev A.A., Podolets A.A. 2018. Assessment of soil contamination in the recreational areas of the city by the industrial compounds of heavy metals and arsenic. Theoretical and Applied Ecology, 2, 94–101.
  • 32. Ushakova E.S., Puzik A.Yu., Karavaeva T.I. 2020. Microelement composition of the snow cover in the Berezniki urban district (Perm region) Geographical bulletin, 2(53), 130–140.
  • 33. Vasilevich M.I, Vasilevich R.S, Gabov D.N, Kondratenok B.M. 2019. Evaluation of aerial technogenic pollution near industrial enterprises in the tundra zone (by the example of Vorkuta city). Geoecology. Engineering geology. Hydrogeology. Geocryology, 6, 94–105 (in Russian).
  • 34. Visschedijk A.H.J., Denier van der Gon H.A.C., Hulskotte J.H.J, Quass U. Anthropogenic Vanadium emissions to air and ambient air concentrations in North-West Europe. DOI: 10.1051/e3sconf/20130103004.
  • 35. Vlasov D., Vasil’chuk J., Kosheleva N., Kasimov N. 2020. Dissolved and suspended forms of metals and metalloids in snow cover of megacity: partitioning and deposition rates in Western Moscow. Atmosphere, 11, 907.
  • 36. Voronchikhina E.A. & Zhdakaev V.I. 2019. Arsenic in natural and anthropogenic geosystems of the Perm region. Sergeev readings. Proceedings of the annual session of the Scientific Council of the Russian Academy of Sciences on Geoecology, Engineering Geology and Hydrogeology, 278–283. (in Russian).
  • 37. Yuan G.-L., Sun T.-H., Han P., Li J., & Lang X.-X. 2014. Source identification and ecological risk assessment of heavy metals in topsoil using environmental geochemical mapping: Typical urban renewal area in Beijing, China. Journal of Geochemical Exploration, 136, 40–47.
  • 38. Yuan D., Liu Y., Guo X. et al. 2018. Characteristic contaminants in snowpack and snowmelt surface runoff from different functional areas in Beijing, China. Environ Sci Pollut Res, 25, 36256–36266.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7033920a-fcf1-4228-a1a4-f1d782f7a9b2
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