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A Model-Based Approach to Risk Evaluation and the Assessment of Protection Provided by Water Intake and Treatment Systems

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This study presents an assessment of the protection provided by water intake and treatment systems against potential health risk to water consumers. To perform the assessment a case study was conducted involving modelling and risk assessment based on scenarios of decreasing water quality at the intakes (i.e. emergency situations). The study sites were two continuously operating water treatment plants in Southern Poland (CEE). The study material were the results of tests conducted in the years 2012–2019 on samples of water taken directly at the intakes and samples of treated water. The samples were used to determine the concentration of selected metals (Cd, Cr, Mn, Ni, Pb and Zn), organic pollutants (benzo(a)pyrene, benzene, acrylamide, epichlorohydrin, vinyl chloride and 1,2-dichloroethane) and bacteriological pollutants (Coliform bacteria, Escherichia coli, Enterococcus faecali and Clostridium perfringens). The non-carcinogenic (HI) and carcinogenic (CR) hazard indexes were estimated based on the quality of water at the intake using linear regression models. The risk values obtained were compared with permissible values specified in the US EPA methodology. It was demonstrated that the concentrations of the xenobiotics analysed in treated water would have to increase 11 times in the case of adults and 29 times in the case of children before the risk level related to drinking water exceeded permissible values. In the least favourable exposure scenario modelled, assuming the presence of organic xenobiotics in potable water, the total HI amounts to only 10% of the permissible value in adults and 1.5% in children. The total CR calculated for the 3-times lower water quality did not exceed permissible values, which proves that the water treatment systems are safe.
Rocznik
Strony
284--298
Opis fizyczny
Bibliogr. 46 poz., rys., tab.
Twórcy
autor
  • Sądeckie Wodociągi Spółka z o.o. w Nowym Sączu, ul. Wincentego Pola 22, 33-300 Nowy Sącz, Poland
  • Department of Environmental Protection, Faculty of Geology, Geophysics and Environmental Protection, AGH University of Science and Technology, Aleja Mickiewicza 30, 30-059 Kraków, Poland
  • Department of Environmental Protection, Faculty of Geology, Geophysics and Environmental Protection, AGH University of Science and Technology, Aleja Mickiewicza 30, 30-059 Kraków, Poland
Bibliografia
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  • 3. Council Directive 98/83/EC of 3 November 1998 on the quality of water intended for human consumption
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  • 9. Kicińska A., Wysowska E. 2021. Health risk related to the presence of metals in drinking water from different types of sources, Water Environ. J., 24–40
  • 10. Kicińska A., Glichowska P., Mamak M. 2019. Micro- and macroelement contents in the liver of farm and wild animals and the health risks involved in liver consumption. Environmental Monitoring and Assessment, 191, 3(132): 1-18, DOI: 10.1007/s10661-019-7274-x
  • 11. Kicińska A., Kosa-Burda B., Kozub P. 2018. Utilization of a sewage sludge for rehabilitating the soils degraded by the metallurgical industry and a possible environmental risk involved. Human and Ecological Risk Assessment, 24(7) 1990-2010, DOI: 10.1080/10807039.2018.1435256
  • 12. Kicińska A. 2018. Health risk assessment related to an effect of sample size fractions: methodological remarks. Stochastic Environmental Research and Risk Assessment, 32, 1867–1887. DOI: 10.1007/s00477-017-1496-7
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  • 22. Song Y.M., Wang C., Liu S., Pan J.C., Guo P.R. 2019. Distribution, Sources, and Health Risk Assessment of PAHs in Water Supply Source Regions of Guangzhou. Aug; 40(8), 3489-3500. DOI: 10.13227/j.hjkx.201811006.
  • 23. Walaszek M., Cary L., Bilbon G., Blessing M., Bouvet-Swialkowski A., Criquet J., Mossmann J-R. 2020. Transfer dynamics of chlorinated solvents in the chalk aquifer of northern France [w] EGU General Assembly 2020, Online, 4–8 May 2020, EGU2020-13163. https://doi.org/10.5194/egusphere-egu2020-13163
  • 24. Water Safety Plan Sądeckie Wodociagi, 2019. Unpublished item.
  • 25. Wiewiórska I., Wysowska E., Zaryczny S. 2021a. Risk analysis of the surface intake on the Dunajec River in Stary Sącz. Sądeckie Waterworks. Unpublished item [in Polish]
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  • 29. Wysowska E., Wiewiórska I., Kicińska A. 2021. The impact of different stages of water treatment process on the number of selected bacteria. Water Resources and Industry. 26(100167), 1–16.
  • 30. Wysowska, E., Kicińska, A. 2021. Assessment of health risks with water consumption in terms of content of selected organic xenobiotics. Desalination and Water Treatmentthis link is disabled, 234, 1–14
  • 31. Wysowska E., Kudlik K., Kicińska A. 2020. Bacteriological health threats to water in home wells. Archives of Environmental Protection, 46(2).
  • 32. Wysowska E., Kicińska A., Nikiel G. 2019. Analysis of natural vulnerability of groundwater intakes to migration of surface pollutants based on a selected part of the Dunajec River basin, Pol. J. Environ. Stud., 29(4), 2925–2934. DOI: 10.15244/pjoes/111441
  • 33. US EPA 1989. Risk Assessment Guidance for Superfund, vol. 1: Human Health Evaluation Manual. Part A. Interim. Final. EPA/540/1-89/002. Washington, DC. USA: Office of Emergency and Remedial Response, US EPA https://www.epa.gov
  • 34. Yang M., Fei Y., Yu Y., Ma Z., Li H. 2012. Health risk assessment of groundwater pollution- a case study of typical city in North China plain. Journal of Earth Science, 23(3), 335-348.
  • 35. Zhang Y., Zhang L., Huang Z., Li Y., Li J., Wu N., He J., Zhang Z., Liu Y., Niu Z. 2019. Pollution of polycyclic aromatic hydrocarbons (PAHs) in drinking water of China: Composition, distribution and influencing factors. Ecotoxicology and Environmental Safety, 177, 108-116. DOI: 10.1016/j.ecoenv.2019.03.119
  • 36. Zimoch I., Mulik B. 2019. Controversies over the basic definitions of Water Safety Plans. Water technology, 2 (64), 62-65. [in Polish]
  • 37. PN-EN ISO/IEC 17025:2018-02 General requirements for the competence of testing and calibration laboratories
  • 38. PN-EN ISO 17993: 2005 Water quality. Determination of 15 polycyclic aromatic hydrocarbons (PAHs) in water by HPLC with fluorescence detection after liquid-liquid extraction.
  • 39. PN-EN ISO 15680: 2008 standard. Water quality - Determination of selected monocyclic aromatic hydrocarbons, naphthalene and some chlorinated compounds by gas chromatography using the technique of rinsing and catching and thermal desorption.
  • 40. PN-EN ISO 11423-1: 2002 standard Water quality. Determination of benzene and some derivatives. Part 1: Gas chromatography method for headspace analysis.
  • 41. PN-EN 14207: 2005 standard Water quality. Determination of epichlorohydrin.
  • 42. EPA Method 8032A 1996, https://www.epa.gov/hw-sw846/sw-846-test-method-8032a-acrylamide-gas-chromatography
  • 43. PN-EN ISO 10301: 2002 standard Water quality. Determination of readily volatile halogenated hydrocarbons. Methods using gas chromatography.
  • 44. PN-EN ISO 7899–2:2004 standard for Enterococcus faecalis
  • 45. PN-EN ISO 9308-1:2014-12+A1:2017-04 standard for Coliform bacteria and Escherichia coli
  • 46. Archives of Sądeckie Wodociągi - results of operational monitoring and review of water intakes for the years 2012–2021.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-37fd4852-17cc-4b88-bfad-d8b62e81dc10
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