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Evaluation of the Pollution Level of Surface and Waste Water

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The household and industrial wastes that have been accumulated during the last 40–50 years organized and spontaneous landfills (garbage dumps) pollution of the natural water bodies near locations. As results of precipitation and solar irradiation, the drainage of water formation occurs; such waters are polluted with harmful and toxic ingredients. The known indices of pollution of industrial and surface waters as well as the technique for determining the class of danger posed by solid household wastes were analyzed. The application of this technique to liquid wastes is suggested, since the change of aggregate state must not restrict its application; on the contrary, a new useful unexpected result can emerge with this. A rather simple dimensionless index of toxicity was chosen on the basis of the following examples: composition of the drainage waters of a specific landfill, content of harmful ingredients in them, excess ratio of their maximum permissible concentration. Such an index takes into account the maximum permissible concentration of the harmful substance in the ground, as well as the fraction of the harmful ingredients in the total mass of the liquid waste. Using the dimensionless index of toxicity, the bar charts were drawn, from which the sequence of removal of harmful components from the liquid mixture can be determined, starting with the component with the least value of dimensionless index of toxicity which characterizes the most dangerous component.
Rocznik
Strony
180--188
Opis fizyczny
Bibliogr. 24 poz., rys., tab.
Twórcy
  • Lviv Polytechnic National University, Stepana Bandery Str., 12, L’viv, L’vivs’ka oblast, 79013, Ukraine
  • Ivano-Frankivsk National Technical University of Oil and Gas, Ivano-Frankivsk, Karpats’ka, 15, Ivano-Frankivsk, Ivano-Frankivska, 76000, Ukraine
autor
  • Lviv Polytechnic National University, Stepana Bandery Str., 12, L’viv, L’vivs’ka oblast, 79013, Ukraine
Bibliografia
  • 1. Aizhong Ding, Zonghu Zhang, Jiamo Fu and Lirong Cheng, 2001. Biological control of leachate from municipal landfills. Chemosphere, 44(1), 1–8.
  • 2. Degtyar, M.V., Galkina, H.Р. 2019. Research of main factors affecting the efficiency leachate treatment. Scientific notes of TNU Vernadsky. Series: Technical Sciences, 30(69), Part 2, 5, 62–68.
  • 3. EEA Report No 3/2011. Waste opportunities. Past and future climate benefits from better municipal waste management in Europe : http://www.eea.europa.eu/ publications/waste-opportunities-84-past-and.
  • 4. Gronow, J.R., Slack, R.J., Voulvoulis N. 2005. Household hazardous waste in municipal landfills: contaminants in leachate. Sci. Total Environ., 337, 119–137.
  • 5. Gaydin A.M., Diakiv V.O., Pohrebennyk V.D. Pashuk A.V. 2013. Chemical composition of Filtrate from Lviv landfill of solid household wastes. Nature of Western Polissia and of adjacent territories, chapter 1, Geography, 10, 42–43. (in Ukrainian).
  • 6. Karpinski, M., Pohrebennyk, V., Bernatska, N., Ganczarchyk, J., Shevchenko, O., 2018. Simulation of Artificial Neural Networks for Assessing the Ecological State of Surface Water, 18th International Multidisciplinary Scientific GeoConference SGEM 2018, Albena, Bulgaria, 693–700.
  • 7. Kolisnyk, A. V., Yurasov, C. N. 2009. Improvement in technique of complex estimation of quality of surface waters, Bulletin of Odessa State Ecological University, 7, 192–202 (in Ukrainian).
  • 8. Kvaternyuk, S., Pohrebennyk, V., Petruk, R., Kochanek, A., Kvaternyuk, O. 2017. Multispectral television measurements of parameters of natural biological media. 17th International Multidisciplinary Scientific GeoConference SGEM, Albena, Bulgaria, 17(51), 689–696.
  • 9. Mitryasova, O., Pohrebennyk, V., Cygnar, M., Sopilnyak, I. 2016. Environmental Natural Water Quality Assessment by Method of Correlation Analysis. 16th International Multidisciplinary Scientific Geoconference SGEM 2016, Albena, Bulgaria, 17(5), 317–324.
  • 10. Pohrebennyk, V., Dzhumelia, E., Korostynska, O., Mason, A., Cygnar, M. 2017. X-Ray Fluorescent Method of Heavy Metals Detection in Soils of Mining and Chemical Enterprises. 9th International Conference on Developments in eSystems Engineering, DeSE 2016, 7930667, 323–328.
  • 11. Pohrebennyk, V., Mitryasova, О., Kłos-Witkowska, A., Dzhumelia, E. 2017. The role of monitoring the territory of industrial mining and chemical complexes at the stage of liquidation. International Multidisciplinary Scientific GeoConference Surveying Geology and Mining Ecology Management, SGEM, 17(33), Vienna, Austria, 383–390.
  • 12. Pohrebennyk, V., Petryk, A., 2017. The degree of pollution with heavy metals of fallow soils in rural administrative units of Psary and Płoki in Poland. 17th International Multidisciplinary Scientific GeoConference, SGEM, Albena, Bulgaria, 17(52), 967–974.
  • 13. Pohrebennyk, V., Karpinski, M., Dzhumelia, E., KlosWitkowska, A., Falat, P. 2018. Water bodies pollution of the mining and chemical enterprise, International Multidisciplinary Scientific GeoConference Surveying Geology and Mining Ecology Management, SGEM, Albena, Bulgaria, 18(52), 1035–1042.
  • 14. Romanenko, V.D., Zhukynckiy, V.M., Oksiuk, O.P. at al. 1988. Technique of ecological estimation of quality of surface waters according to the corresponding categories, Kyiv, Symbol-T (in Ukrainian).
  • 15. Sagdeeva O.A., Krusir, H.V., TSykalo, A.L. 2018. Estimation of the degree of ecological danger of landfill of solid municipal waters. Ecological Security and Balanced Resource Use, 1(25), 75–83 (in Ukrainian).
  • 16. Slack, R.J., Gronow, J.R., Hall, D.H., Voulvoulis, N. 2007. Household hazardous waste disposal to landfill: Using LandSim to model leachate. Sci. Total Environ., 501–509.
  • 17. Styskal, O., Ishchenko, V., Petruk, R., Pohrebennyk, V., Kochanek, A. 2016. Assessment of chlorinated water impact on phytoplankton.16th International Multidisciplinary Scientific Geoconference, SGEM2016, Vienna, 373–380.
  • 18. Shakhman, І.А., Loboda, N.S. 2016. Water quality estimation at the gauge station of the Ingulets river, town of Snigurivka, by hydrochemical parameters. Ukrainian Journal of hydrometeorology, 17, 123–136 (in Ukrainian).
  • 19. Skyba, E. E., Semchuk, Ya. V. 2013. Estimation of quality of ground waters from Kachaniv oil deposit. Ecologial security and balanced resource use, 1(7), 3, 34–39 (in Ukrainian).
  • 20. Turkadze, Ts. P., Kamkamidze, N. R., Bogvekadze, M. Z. 2006. Study of intensity of processes of selfpurification of ground waters in a region of municipal landfill of household garbage. Ecological systems and devices, 5, 13–14 (in Russian).
  • 21. Ukrainian State Sanitary Rules and Regulations 2.2.7.029–99. 1999. Hygienical Requirements concerning industrial waters management and determination of the class of danger for public healt, 29 (in Ukrainian).
  • 22. Vasenko, O.G., Rybalova, O.V., Artemiev, S. R., Horban, N.S. at al. 2015. Integral and complex estimations of the state of environment. Monography. Kh: NTU CZU (in Ukrainian).
  • 23. Yurasov, S.M., Safranov, T.A., Chuhay, A.V. 2012. Estimation of quality of natural waters. Tutorial, Odessa State Ecological Univerrsity (in Ukrainian).
  • 24. Zaltsberg, E. 2009. Monitoring of quality of underground waters with the aim to prevent emergences in regions of landfill (for example in Canada). Water Resources, 24(5), 630-633 (in Russian).
Uwagi
Opracowanie rekordu ze środków MNiSW, umowa Nr 461252 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2020).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-0b912f3d-12b4-4ae3-bad7-dc49074f4a19
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