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Spectral Analysis Method for Distinguishing Heavy Metals Pollution in the Pioneer Vegetation of Landfills Located within the Prikarpatian Geobotanical District of Ukraine

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EN
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EN
In Ukraine, the tourism and recreation industry is widespread. These are mostly resort complexes with health boarding houses, hotels and restaurants. However, in Ukraine, the issue of solid household waste processing and active landfills, located near recreation facilities, is practically not addressed. Undoubtedly, this situation has a negative effect on the processes of recovery, because, as is known, landfills are depositing dangerous substances and compounds, which, due to geochemical flows, get into all components of the environment, which seem to be clean. The aim of this investigation is to determine the heavy metals content in the vegetation of a landfill near a places for recreation. The object of present research is the analysis of heavy metals content in the roots of trees on the Bronytsya landfill, located within the tourist and recreational complex of the Lviv region of Ukraine. It was established that tree roots are contaminated with Pb components and partially with Cd and Co components. Among the toxic chemicals, we can highlight the presence of Pb with a significant difference on the eastern side of the landfill in samples of Acer negundo L. (4 times higher than the MAC) and Populus nigra L. (7.1 times higher than the MAC), on the southern side – Fagus sylvatica L (1.1 times higher than the MAC) and Malus sylvestris Mill. (7 times higher than the MAC), on the west side – Salix cinerea L. (2.5 times higher than the MAC) and Carpinus betulus L. (6 times higher than the MAC), on the northern side of the landfill – Malus sylvestris Mill (2.5 times higher than the MAC) and Prunus spinosa L. (3 times higher than the MAC) and in the central part – Populus nigra L. (1.5 times higher than the MAC) and Salix alba L. (2 times higher than the MAC) in accordance with other samples on the investigated object. Cd exceeds the allowable concentration from the south side in Fagus sylvatica L. (1 times higher than the MAC) and Malus sylvestris Mill. (2 times higher than the MAC), from the west side in the root of Carpinus betulus L. (1 times higher than the MAC), from the center of the Salix alba L. (8 times higher than the MAC), from the south side of Malus sylvestris Mill. (11 times higher than the MAC), and on the eastern side Acer negundo L. (4 times higher than the MAC) and Populus nigra L. (8 times higher than the MAC). The content of Co was higher in the roots of trees from the west side of Salix cinerea L. (1 times higher than the MAC), from the west side of Carpinus betulus L. (1.7 times higher than the MAC), from the south side – Malus sylvestris Mill. (2 times higher than the MAC), and on the eastern side – Populus nigra L. (2 times higher than the MAC). An excess of Cu content was recorded on the western side of the landfill in the root of Carpinus betulus L. (1 times higher than the MAC). The determination of the chemical content in the roots of trees is important because it is possible to define the pollution rate of the environment in the health resort regions.
Twórcy
  • Lviv State University of Life Safety, Institute of Civil Protection, Kleparivska Str., 35, 79000 Lviv, Ukraine
  • Lviv State University of Life Safety, Institute of Civil Protection, Kleparivska Str., 35, 79000 Lviv, Ukraine
Bibliografia
  • 1. Adamcova D., Radziemska M., Ridoskova A., Barton S., Pelcova P., Elbi J., Kunicky J., Brtnicky M., Vaverkova M. D. 2017. Environmental assessment of the effects of a municipal landfill on the content and distribution of heavy metals in Tanacetum vulgare L. Chemosphere, 185, 1011–1018. http://dx.doi.org/10.1016/j.chemosphere.2017.07.060
  • 2. A D., Oka M., Fujii Y., Soda S., Ishigaki T., Machimura T., Ike M. 2017. Removal of heavy metals from synthetic landfill leachate in lab-scale vertical flow constructed wetlands. Science of the Total Environment, 9. http://dx.doi.org/10.1016/j.scitotenv.2017.01.112
  • 3. Akanchise T., Boakye S., Borquaye L. S., Dodd M., Darko G. 2020. Distribution of heavy metals in soils from abandoned dump sites in Kumasi, Ghana. Scientific African, 10, 00614. https://doi.org/10.1016/j.sciaf.2020.e00614
  • 4. Businelli D., Massaccesi L., Said-Pullicino D., Gigliotti G. 2009. Long-term distribution, mobility and plant availability of compost-derived heavy metals in a landfill covering soil. Science of the total environment, 407, 1426–1435. https://doi.org/10.1016/j.scitotenv.2008.10.052
  • 5. Gautam M., Agrawal M. 2019. Identification of metal tolerant plant species for sustainable phytomanagement of abandoned red mud dumps. Applied Geochemistry, 104, 83–92. https://doi.org/10.1016/j.apgeochem.2019.03.020
  • 6. Kasassi A., Rakimbei P., Karagiannidis A., Zabaniotou A., Tsiouvaras K., Nastis A., Tzafeiropoulou K. 2008. Soil contamination by heavy metals: Measurements from a closed unlined landfill. Bioresource Technology, 99, 8578–8584. https://doi.org/10.1016/j.biortech.2008.04.010
  • 7. Mukhopadhyay S., Chakraborty S., Bhadoria P.B.S., Li B., Weindorf D. C. 2020. Assessment of heavy metal and soil organic carbon by portable X-ray fluorescence spectrometry and NixPro™ sensor in landfill soils of India. Geoderma Regional, 20, 00249. https://doi.org/10.1016/j.geodrs.2019.e00249
  • 8. Oziegbe O., Oluduro A.O., Oziegbe E.J., Ahuekwe E.F., Olorunsola S.J. 2021. Assessment of heavy metal bioremediation potential of bacterial isolates from landfill soils. Saudi Journal of Biological Sciences. https://doi.org/10.1016/j.sjbs.2021.03.072
  • 9. Pastor J., Hernández A.J. 2012. Heavy metals, salts and organic residues in old solid urban waste landfills and surface waters in their discharge areas: Determinants for restoring their impact. Journal of Environmental Management, 95, S42–S49. https://doi.org/10.1016/j.jenvman.2011.06.048
  • 10. Popovych, V., Stepova, K., Voloshchyshyn, A., Bosak, P. Physico-chemical properties of soils in Lviv Volyn coal basin area. E3S Web of Conferences, 105, 02002. https://doi.org/10.1051/e3sconf/201910502002
  • 11. Bosak P., Popovych V., Stepova K., Dudyn R. 2020. Environmental impact and toxicological properties of mine dumps of the Lviv-Volyn coal basin. News of the National academy of sciences of the Republic of Kazakhstan. Series of Geology and Technical, 2(440), 48–54. https://doi.org/10.32014/2020.2518-170X.30
  • 12. Karabyn V., Popovych V., Shainoha I., Lazaruk Y. Long-term monitoring of oil contamination of profile-differen-tiated soils on the site of influence of oil-and-gas wells in the central part of the Boryslav-Pokuttya oil-and-gas bearing area. Petroleum and Coal, 61(1), 81–89.
  • 13. Ganeval G., Zozikovа E. 2007. Effect of increasing Сu2+ concentrations on growth and content of free phenols in two lines of wheat (Тriticum aestivum) with different tolerance. Gen. Appl. Plantphysiology, 33(1–2), 75–82.1.
  • 14. Order of the Ministry of Health of Ukraine dated 13.05.2013 No. 368 On approval of State hygienic rules and regulations “Regulation of maximum levels of certain pollutants in food products”.
  • 15. Korol K.A. 2022. Physico-chemical properties of melted snow on landfills near the tourist and recreational complex of Lviv region. Environmental Sciences, 2(41), 171–178. https://doi.org/10.32846/2306-9716/2022.eco.2-41.30
Uwagi
Opracowanie rekordu ze środków MEiN, umowa nr SONP/SP/546092/2022 w ramach programu "Społeczna odpowiedzialność nauki" - moduł: Popularyzacja nauki i promocja sportu (2022-2023).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-5f9c7f9e-244a-4793-9783-62afe51ff312
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