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Dynamics of Changes in the Concentration of Oil Products in the Tura River within the Residential Area of the Large Oil Capital of Russia

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
In the course of the study, the following tasks were solved: determining the level of oil products and their spatial distribution in surface waters and bottom sediments of the Tura River, studying the features of the accumulation of oil products in bottom sediments in different sections of the Tura River, as well as the effect of storm and melt water contaminated with oil products within the coastal boundaries on the general background of pollution, calculated by the approximation method the distance at which the maximum permissible concentration for the Tura River would be reached, gave recommendations on the preservation of the object under study. The research was carried out in the laboratory of the Tyumen Industrial University. The analysis of samples for the content of oil products was carried out by the fluorometric method on a fluid analyzer “Fluorat-02–2M”. The results of the study indicate the need to monitor surface waters and toughly respond to insufficient compliance with the standards for the protection of surface waters and bottom sediments within the city of Tyumen.
Rocznik
Strony
223--229
Opis fizyczny
Bibliogr. 9 poz., rys.
Twórcy
  • Federal State Budget Educational Institution of Higher Education, Industrial University of Tyumen, Volodarskogo Street 38, 652001 Tyumen, Russia
Bibliografia
  • 1. 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.
  • 2. 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)
  • 3. 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)
  • 4. 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.
  • 5. 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).
  • 6. Ryazantseva A.V. 2019.Monitoring of naturalterritorial complex in the zone of oil and gas development (on materials of Bovanenkovo NGKM, Yamal district, YNAO). Collection of theses of VII regional youth conference named after Shpilman V.I. Problems of rational nature management and history of geological prospecting in Western Siberia, Khanty-Mansiysk, March 28–29, 2019. Khanty-Mansiysk. Yugorsky Format. Limited Liability Company, 135–138.
  • 7. Soliman M., Eldyasti A. 2018. Ammonia-Oxidizing Bacteria (AOB): opportunities and applications-a review. Reviews in Environmental Science and Bio/ Technology, 17, 285–321. DOI: 10.1007/s11157–018–9463–4 14.
  • 8. Wang L., Zhang J., Li H., Yang H., Peng C., Peng Z., Lu L. 2018. Shift in the microbial community composition of surface water and sediment along an urban river. Science of The Total Environment, 627, 600–612. DOI: 10.1016/j.scitotenv.2018.01.203
  • 9. Wang N., Gao J., Liu Y., Wang Q., Zhuang X., Zhuang G. 2021. Realizing the role of N-acylhomoserine lactone-mediated quorum sensing in nitrification and denitrification: A review. Chemosphere, 274, 129970. DOI: 10.1016/j.chemosphere.2021.129970
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-7e309d16-52a1-4836-96a3-ba16dc098c26
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