PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Monitoring of the Influence of Landfills on the Atmospheric Air Using Bioindication Methods on the Example of the Zhytomyr Landfill, Ukraine

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The paper presents the results of research on the implementation of monitoring of the landfills influence on the atmospheric air using bioindication methods on the example of the Zhytomyr landfill (Ukraine)–one of the typical Ukrainian landfills, which is operated with minimal environmental protection measures. A comprehensive study of atmospheric air pollution in the landfill area was carried out using a human sensor system and an integral assessment using bioindication (lichens were chosen as bioindicators). The study revealed a reliable exponential dependence for modeling the relationship between the distance from the source of gas formation (solid waste landfill in the city of Zhytomyr) and the intensity of odor. The level of atmospheric air pollution was also determined based on the assessment of the projective coverage of the tree trunk with lichens. The research revealed an exponential dependence for modeling the relationship between the distance from the landfill boundary and the total coverage of the tree trunk with lichens. The results of the analysis confirmed the correctness of the use of the aforementioned method. The relationship between the results obtained by the lichen indication method and the strength of the odor from the landfill was evaluated. Based on the results of calculating the relative values of the assessment of atmospheric air pollution by the method of coverage of the tree trunk with lichens and the strength of the odor, a regression analysis was carried out and mathematical relationships were determined, that most accurately describe the change in these indicators with distance from the landfill boundary. It is proved that both tested methods can be used in Ukrainian realities to monitor the state of atmospheric air in the area of influence of municipal landfills, depending on the purpose of research. The analysis of the research results confirmed the significance of the results of the obtained assessment of the impact of the Zhytomyr solid waste landfill on the state of atmospheric air. The materials of these studies can find further application for the formation of databases of knowledge of landfills, which will allow to develop a strategy for managing them as an object of increased environmental hazard.
Słowa kluczowe
Rocznik
Strony
36--49
Opis fizyczny
Bibliogr. 41 poz., rys., tab.
Twórcy
  • Viacheslav Chornovil Institute of Sustainable Development, Lviv Polytechnic National University, S. Bandera Str. 12, Lviv, 79013, Ukraine
  • Zhytomyr Polytechnic State University, 103, Chudnivska str., Zhytomyr, 10005, Ukraine
  • Zhytomyr Polytechnic State University, 103, Chudnivska str., Zhytomyr, 10005, Ukraine
autor
  • Viacheslav Chornovil Institute of Sustainable Development, Lviv Polytechnic National University, S. Bandera Str. 12, Lviv, 79013, Ukraine
Bibliografia
  • 1. ASTM E544–18 Standard Practice for Referencing Suprathreshold Odor Intensity. Retrieved 23 March 2021, from https://www.astm.org/Standards/E544.htm
  • 2. Badtiyev Yu.S. & Kulemin A.A. 2001. Bioindication is a low-cost and effective method of cognition (in Russian). Ekologicheskiy vestnik Rossiyi, No. 1, 38–41.
  • 3. Byrnes H. & Frohlich T. 2019. Canada produces the most waste in the world. The US ranks third. Electronic resource USA Today. 24/7 Wall Street, from https://www.usatoday.com/story/money/2019/07/12/canada-united-states-worldsbiggestproducers-of-waste/39534923/.
  • 4. Cheng Z., Sun Z., Zhu S., Lou Z., Zhu, N. & Feng L. 2019. The identification and health risk assessment of odor emissions from waste landfilling and composting. Science of the Total Environment, 649, 1038–1044. doi:10.1016/j.scitotenv.2018.08.230.
  • 5. Compendium of Methods for the Determination of Toxic Organic Compounds in Ambient Air | US EPA. 2021. Retrieved 23 March 2021, from https://www.epa.gov/amtic/compendium-methods-determination-toxic-organic-compounds-ambient-air.
  • 6. Fang J.J., Yang N., Cen D.Y., Shao L.M. & He P.J. 2012. Odor compounds from different sources of landfill: characterization and source identification. Waste Manag., 32(7), 1401–1410.
  • 7. Getman A.P. & Lozo V.I. 2017. Harmonization of Ukrainian Waste Treatment Laws with EU Legislation. Environmental Policy and Law / Ekolohichna Polityka i Pravo, 47(1), 48–52.
  • 8. Gorova A., Pavlychenko A., Borysovska O. 2013. The study of ecological state of waste disposal areas of energy and mining companies. Annual ScientificTechnical Colletion – Mining of Mineral Deposits, 2013, 169–171.
  • 9. Kondratyuk, S. 2016. Lichen indication. Retrieved 23 March 2021, from http://esu.com.ua/search_articles.php?id=55887.
  • 10. Korbut M.B. 2015. Ensuring environmental safety of solid waste landfills (in Ukrainian). Ph.D. Thesis, Kremenchuk Mykhailo Ostrohradskyi National University, Kremenchuk.
  • 11. Korbut M.B. & Malyovanyy M.S. 2013. Prevention of water basin pollution in the area of impact of the Zhytomyr landfill by treatment of wastewater from organic pollutants, ammonium nitrogen and heavy metals. Visnyk ZhDTU, 67(4), 127–134.
  • 12. Krasnogorskaya N.N., Zhuravlyeva S.Ye. & Minnullina G.R. 2004. Lichenoindication scales for assessing the quality of atmospheric air. Basic Research (in Russian), 5, 38–42.
  • 13. Lee Y.Y., Jung H., Ryu H.W., Oh K.C., Jeon J.M. & Cho K.S. 2018. Seasonal characteristics of odor and methane mitigation and the bacterial community dynamics in an on-site biocover at a sanitary landfill. Waste Manag, 71, 277–286.
  • 14. Liu Y., Lu W., Li D., Guo H., Caicedo L., Wang C., Xu S. & Wang H. 2015. Estimation of volatile compounds emission rates from the working face of a large anaerobic landfill in China using a wind tunnel system. Atmos. Environ. 111, 213–221.
  • 15. Malovanyy M., Moroz O., Hnatush S., Maslovska O., Zhuk V., Petrushka I., Nykyforov V. & Sereda A. 2019. Perspective Technologies of the Treatment of the Wastewaters with High Content of Organic Pollutants and Ammoniacal Nitrogen. Journal of Ecological Engineering, 20(2), 8–15. https://doi.org/10.12911/22998993/94917
  • 16. Manning W.J., & Feder W.A. 1980. Biomonitoring air pollutants with plants. Biomonitoring Air Pollutants with Plants.
  • 17. Mishchenko V., Makovetska Y. & Omelyanenko T. 2013. Institutional development of waste management in Ukraine: towards European Integration. Institute of Environmental Economics and Sustainable Development National Academy of Sciences of Ukraine, 192.
  • 18. Omelyanenko T.L. & Makovetska Yu.M. 2015. Directions for improving environmental policy in the field of waste management in Ukraine based on the relevant experience of the European Union (in Ukrainian). Ekonomika pryrodokorystuvannya i okhorony dovkillya, 35–43.
  • 19. Osypova T.A. & Remez N.S. 2015. Prediction of biogas yield and landfill temperature of solid waste based on mathematical modeling (in Ukrainian). Visnyk Kremenchuk Mykhailo Ostrohradskyi National University, 3(92), 144–149
  • 20. Pavlychenko A., Kovalenko, A. 2013. The investigation of rock dumps influence to the levels of heavy metals contamination of soil. Annual ScientificTechnical Colletion – Mining of Mineral Deposits, 2013, 237–238.
  • 21. Pecorini I., Baldi F., Bacchi D., Carnevale E.A. & Corti A. (2017. Leaching behaviour of hazardous waste under the impact of different ambient conditions. Waste Manag., 63, 96–106.
  • 22. Pecorini I., Rossi E. & Iannelli R. 2020. Mitigation of methane, NMVOCs and odor emissions in active and passive biofiltration systems at municipal solid waste landfills. Sustainability (Switzerland), 12(8) doi:10.3390/SU12083203
  • 23. Popovych N.P. (201. Environmentally safe collection, transportation and disposal of solid waste. (in Ukrainian) Ph.D. Thesis, Lviv State University of Life Safety, Lviv.
  • 24. Popovych V., Stepova K. & Prydatko O. 2018. Environmental hazard of Novoyavorivsk municipal landfill. In: MATEC, Web of Conferences 247, 00025. FESE 2018. https://doi.org/10.1051/matecconf/201824700025
  • 25. Popovych V., Telak J., Telak O., Malovanyy M., Yakovchuk R. & Popovych N. 2020. Migration of hazardous components of municipal landfill leachates into the environment. Journal of Ecological Engineering, 21(1), 52–62. https://doi.org/10.12911/22998993/113246
  • 26. Radovenchyk V.M. & Homelya M.D. 2010. Solid waste: collection, processing, storage (in Ukrainian). Kiev, Condor, 552.
  • 27. Rossi E., Frasi N., Pecorini I. & Ferrara G. 2018. Methane oxidation efficiency and NMVOCs reduction in a full-scale passive bioifltration system for the treatment of residual landfill gas. Procedia Environ. Sci. Eng. Manag., 5, 147–152.
  • 28. Safranov T.A., PrykhodkoV. Yu. & Shanina T.P. 2016. The problem of waste disposal in landfills and landfills of Odessa region (in Ukrainian). Visnyk KhNu im. V.N Karazina, 14, 83–90
  • 29. Sagdeeva O.A., Krusir H.V. & Tsykalo A.L. 2018. Assessment of the level of environmental hazard of municipal solid waste landfills (in Ukrainian). Ekolohichna bezpeka, 1, 75–83.
  • 30. Sagdeeva O.A. 2018. Improving the technology of composting the food component of solid waste. Ph.D. Thesis, Odessa National Academy of Food Technologies, Odessa.
  • 31. Skyba T., Popovych V., Dominik A., Rudenko, D., Bosak, P. 2020. Dose rate of the landfills of north-west podillya (Ukraine). International Multidisciplinary Scientific GeoConference Surveying Geology and Mining Ecology Management, SGEM, 259–266. https://doi.org/10.5593/sgem2020/5.1/s20.033
  • 32. Stalinska I.V. 2016. Peculiarities of ecological safety in the system “solid household waste–environment–human health” (in Ukrainian). Naukovyy visnyk NLTU Ukrainy, 26(7), 238–244.
  • 33. State building codes of Ukraine. 2005. Landfills for solid waste. Basic design provisions. (in Ukrainian). DBN В.2.4–2–2005. Kiev.
  • 34. Stolaroff J.K., Bhattacharyya S., Smith C.A., Bourcie, W.L., Cameron-Smith P.J. & Aines R.D. 2012. Review of methane mitigation technologies with application to rapid release of methane from the arctic. Environ. Sci. Technol., 46, 6455–6469.
  • 35. Trass H. 1973. Lichen sensitivity to the air pollution and index of poleotolerance (I.P.). Folia Cryptogamica Estonica, No. 3.
  • 36. Trass H.H. 1985. Classes of field tolerance of lichens and ecological monitoring. Probl. Eco. Monitoring and Modeling Ecosystems (in Russian). Leningrad. Vol. 7.
  • 37. Tymchuk, I., Malovanyy, M., Shkvirko, O., Zhuk, V., Masikevych, A., Synelnikov, S. 2020. Innovative creation technologies for the growth substrate based on the man-made waste–perspective way for ukraine to ensure biological reclamation of waste dumps and quarries. International Journal of Foresight and Innovation Policy, 14(2–4), 248–263.
  • 38. Vambol S., Vambol V., Bogdanov I., Suchikova,Y. & Rashkevich N. 2017. Research of the influence of decomposition of wastes of polymers with nano inclusions on the atmosphere. Eastern-European Journal of Enterprise Technologies, 6(10–90), 57–64. https://doi.org/10.15587/1729–4061.2017.118213
  • 39. Waste Atlas, 2013 Report. Website: http://www.dwaste.com.
  • 40. Waste Atlas The World’s 50 Biggest Dumpsites. (2014). Website: http://www.d-waste.com.
  • 41. Wu C., Liu J., Liu S., Li W., Yan L., Shu M., Zhao P., Zhou P. & Cao W. 2018. Assessment of the health risks and odor concentration of volatile compounds from a municipal solid waste landfill in China. Chemosphere, 202, 1–8.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-bf0d054c-8bb7-4cc8-b1e5-23502748e675
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.