Have a personal or library account? Click to login
Risk analysis for groundwater in the area of the municipal waste landfill in Sosnowiec, South Poland Cover

Risk analysis for groundwater in the area of the municipal waste landfill in Sosnowiec, South Poland

Open Access
|Mar 2024

References

  1. Alam R., Ahmed Z., Seefat S. 2021. Assessment of surface water quality around a landfill using multivariate statistical method, Sylhet, Bangladesh. Environmental Nanotechnology Monitoring & Management, 15, 4: 100422.
  2. Ali M., El Fadili H., El Mahi M., Fannakh A., Chahine A. 2023. Geochemistry pollution status and ecotoxicological risk assessment of heavy metal (oid) s in soil influenced by colandfilling of MSW and sewage sludge, Morocco. Environmental Nanotechnology, Monitoring & Management, 20: 100859.
  3. Aralu C., Okoye P., Akpomie K. 2021. Toxicological risk evaluation of polycyclic aromatic hydrocarbons in boreholes located within unsanitary dumpsite in Nnewi, Anambra State, Nigeria. International Journal of Environmental Analytical Chemistry, 103, 16: 3897–3912.
  4. Backman B., Bodis D., Lahermo P., Rapant S., Tarvainen T. 1998. Application of a contamination index in Finland and Slovakia. Environmental Geology, 36: 55–64.
  5. Bartram J., Corrales L., Davison A., Deere D., Drury D., Gordon B., Howard G., Rinehold A., Stevens M. 2009. Water safety plan manual: step-by-step risk management for drinking-water suppliers. Technical document, World Health Organization.
  6. Bhalla G., Swamee P.K., Kumar A., Bansal A. 2012. Assessment of groundwater quality near municipal solid waste landfill by an Aggregate Index Method. International Journal of Environmental Science, 2, 2: 1492–1503.
  7. Chen Z.Y., Zhao Y.Y., Chen D.L., Huang H.T., Zhao Y., Wu Y.J. 2023. Ecological risk assessment and early warning of heavy metal cumulation in the soils near the Luanchuan molybdenum polymetallic mine concentration area, Henan Province, central China. China Geology, 6, 1: 15–26.
  8. Christensen T.H., Kjeldsen P., Bjerg P.L., Jensen D.L., Christensen B.J., Baun A., Albrechtsen H., Heron G. 2001. Biogeochemistry of landfill leachate plumes. Applied Geochemistry, 16: 659–718.
  9. Dąbrowska D., Witkowski A., Sołtysiak M. 2018. Application of pollution indices for the assessment of the negative impact of a municipal landfill on groundwater (Tychy, southern Poland). Geological Quarterly, 62: 496–508.
  10. Dąbrowska D., Witkowski AJ. 2022. Groundwater and Human Health Risk Assessment in the Vicinity of a Municipal Waste Landfill in Tychy, Poland. Applied Sciences, 12, 24: 12898.
  11. Doktorowicz-Hrebnicki S. 1957. Detailed Geological Map of the Upper Silesian Coal Basin, Scale 1:50,000. Structural Map. Geological Institute, Warsaw, Poland.
  12. Dominguez C., Martinez I., Pena P., Ochoa A. 2019. Analysis and evaluation of risks in underground mining using the decision matrix risk-assessment (DMRA) technique, in Guanajuato (Mexico). Journal of Sustainable Mining, 18,1: 52–59.
  13. El Fadili H., Ali M., Touach N., Mahi M., Lotfi E. 2022b. Ecotoxicological and pre-remedial risk assessment of heavy metals in municipal solid wastes dumpsite impacted soil in Morocco. Environmental Nanotechnology, Monitoring & Management, 17: 100640.
  14. El Fadili H., Ali M.B., El Mahi M., Cooray A.T. 2022a. A comprehensive health risk assessment and groundwater quality for irrigation and drinking purposes around municipal solid waste sanitary landfill: A case study in Morocco. Environmental Nanotechnology, Monitoring & Management, 18: 100698.
  15. Elbl J., Šimečková J., Škarpa P., Kintl A., Brtnický M., Vaverková M.D. 2020. Comparison of the Agricultural Use of Products from Organic Waste Processing with Conventional Mineral Fertilizer: Potential Effects on Mineral Nitrogen Leaching and Soil Quality. Agronomy, 10, 2: 226.
  16. Gajowiec B., Siemiński A. 1997. Hydrogeological map of Poland on a scale of 1:50,000. Sheet Jaworzno (944; with explanations). Polish Geological Institute, Warsaw.
  17. Ghazinoory S., Abdi M., Azadegan-Mehr M. 2011. Swot methodology: a state-of-the-art review for the past, a framework for the future. Journal of Business Economics and Management, 12: 24–48.
  18. Gorzelak M., Dąbrowska D. 2021. Assessment of changes in the quality of ground water in the area of landfill site in Poczesna (South Poland) using the LWPI index. Environmental and Socio-Economic Studies, 9: 35–43.
  19. Gürel E., Tat M. 2017. Swot analysis: a theoretical review. Journal of the International Society of Sports Nutrition, 10: 994–1005.
  20. Haddad A., Galante E., Caldas R., Morgado C. 2012. Hazard Matrix Application in Health, Safety and Environmental Management Risk Evaluation. [in:] J. Emblemsvåg (ed.), Risk Management for the Future – Theory and Cases. IntechOpen: 29–50.
  21. Hill T., Westbrook R. 1997. Swot analysis: it’s time for a product recall. Long Range Planning, 30: 46–52.
  22. Imran U., Khan M., Jamal R., Sahulka S.Q., Goel R., Mahar R., Weidhaas J. 2020. Probabilistic risk assessment of water distribution system in Hyderabad, Pakistan reveals unacceptable health hazards and areas for rehabilitation. Ecotoxicology and Environmental Safety, 191: 110233.
  23. Izah S., Chakrabarty N., Srivastav A. 2016. A Review on Heavy Metal Concentration in Potable Water Sources in Nigeria: human Health Effects and Mitigating Measures. Exposure and Health, 8: 285–304.
  24. Karkocha R. 2021. Assessment of changes in the quality of ground-water in the region of the municipal landfill in Wojkowice. Acta Scientiarum Polonorum. Formatio Circumiectus, 20, 1: 43–54.
  25. Knopek T., Dąbrowska D. 2021. The Use of the Contamination Index and the LWPI Index to Assess the Quality of Groundwater in the Area of a Municipal Waste Landfill. Toxics, 9, 3: 66.
  26. Kowalska J., Mazurek R., Gasiorek M., Zaleski T. 2018.Pollution indices as useful tools for the comprehensive evaluation of the degree of soil contamination – a review. Environmental Geochemistry and Health, 40: 2395–2420.
  27. Krčmar D., Tenodi S., Grba N., Kerkez D., Watson M., Rončević S., Dalmacija B. 2018. Preremedial assessment of the municipal landfill pollution impact on soil and shallow groundwater in Subotica, Serbia. Science of the Total Environment, 615: 1341–1354.
  28. Łukasik M., Dąbrowska D. 2022. Groundwater quality testing in the area of municipal waste landfill sites in Dąbrowa Górnicza (southern Poland). Environmental & Socio-economic Studies, 10, 1: 13–21.
  29. Majka M., Wasilewska B. 2021. Environmental Protection Program for 2021–2024 with a perspective for 2025–2028 for the Sosnowiec Commune. IGO, Katowice: 120. [in Polish].
  30. Majumdar S., Smith R., Butler J.J., Lakshmi V. 2020. Groundwater withdrawal prediction using integrated multi temporal remote sensing data sets and machine learning. Water Resources Research, 56, 11: e2020WR028059.
  31. Mishra V., Kim K., Kang C., Choi K. 2004. Wintertime sources and distribution of airborne lead in Korea. Atmospheric Environment, 38, 17: 2653–2664.
  32. Mohan S., Nithila P., Reddy S. 1996. Estimation of heavy metal in drinking water and development of heavy metal pollution index. Journal of Environmental Science and Health, 31: 283–289.
  33. Mohapatra J.B., Jha P.Y., Jha M.K., Biswal S. 2021 Efficacy of machine learning techniques in predicting groundwater fluctuations in agroecological zones of India. Science of the Total Environment, 785: 147319.
  34. Najafi Saleh H., Valipoor S., Zarei A. 2020. Assessment of groundwater quality around municipal solid waste landfill by using Water Quality Index for groundwater resources and multivariate statistical technique: a case study of the landfill site, Qaem Shahr City, Iran. Environmental Geochemistry and Health, 42: 1305–1319.
  35. Podlasek A., Vaverková M.D., Koda E., Jakimiuk A., Barroso, P.M. 2023. Characteristics and pollutionpotential of leachate from municipal solid waste landfills: Practical examples from Poland and the Czech Republic and a comprehensive evaluation in a global context. Journal of Environmental Management, 332: 117328.
  36. Puyt R., Lie F., Wilderom C. 2023. The origins of SWOT analysis. Long Range Planning, 56, 3: 102304.
  37. Regulation of the Minister of the Environment of April 30, 2013. Journal of Laws No. 523.
  38. Regulation of the Minister of Maritime Economy and Inland Navigation of October 11, 2019 on the criteria and method of assessing the status of groundwater bodies. Journal of Laws of 2019, item 2148.
  39. Różkowski J., Witkowski A., Kropka J., Rzepecki S. 2017. Skład chemiczny i jakość wód czwartorzędowego piętra wodonośnego w rejonie rekultywowanego wyrobiska piasku podsadzkowego Maczki-Bór w świetle wyników badań monitoringowych (The water chemistry and quality of the Quaternary aquifer in the area of reclaimed open pit Maczki-Bór in the light of monitoring data). Przegląd Geologiczny, 65, 11/2: 1371–1376.
  40. Rykała W., Dąbrowska D. 2020. Risk assessment for groundwater in the region of municipal landfill systems in Tychy-Urbanowice (Southern Poland). Environmental and Socio-Economic Studies, 8, 1: 9–17.
  41. Schinke R., Neubert M., Hennersdorf J., Stodolny U., Sommer T., Naumann T. 2012 Damage estimation of subterranean buildingconstructions due to groundwater inundation – the GIS-based model approach GRUWAD. Natural Hazards and Earth System Sciences, 12, 9: 2865–2877.
  42. Sitek S., Janik K., Dąbrowska D., Różkowski J., Wojtal G., Mukawa J., Witkowski AJ., Jakóbczyk-Karpierz S. 2023. Risk assessment for the prevention of managed aquifer recharge (MAR) facility failure during the operation and the expansion phases. Journal of Hydrology, 621: 129591.
  43. Swierc J., Page D., van Leeuwen J., Dillon P. 2005. Preliminary Hazard Analysis and Critical Control Points Plan (HACCP) – Salisbury Stormwater to Drinking Water Aquifer Storage Transfer and Recovery (ASTR) Project. CSIRO Land and Water Technical Report, 20/05.
  44. Talalaj I. 2014. Assessment of groundwater quality near the landfill site using the modified water quality index. Environmental Monitoring Assessment, 186: 3673–3683.
  45. Tamasi G., Cini R. 2004. Heavy metals in drinking waters from Mount Amiata. Possible risks from arsenic for public health in the province of Siena. Science of the Total Environment, 327: 41–51.
  46. Uzoekwe S., Izah S., Aigberua A. 2021. Environmental and human health risk of heavy metals in atmospheric particulate matter (PM10) around gas flaring vicinity in Bayelsa State, Nigeria. Toxicology and Environmental Health Sciences, 13: 323–335.
  47. Valentin E. 2005. Away with swot analysis: use defensive/offensive evaluation instead. Journal of Applied Business Research, 21: 91–104.
  48. Vaverková M.D. 2019. Impact assessment of the municipal solid landfill on environment: A case study. Acta Scientiarum Polonorum. Architectura, 18: 11–20.
  49. Wdowczyk A., Szymanska-Pulikowska A. 2020. How to Choose Pollution Indicators for Monitoring Landfill Leachates. Proceedings, 51, 1: 23.
  50. Witczak S., Kania J., Kmiecik E. 2013. Katalog wybranych fizycznych i chemicznych wskaźników zanieczyszczeń wód podziemnych i metod ich oznaczania Inspekcja Ochrony Środowiska, Biblioteka Monitoringu Środowiska, Warszawa, 646.
  51. Witkowski A.J., Dąbrowska D. 2017. Diagnoza stanu prawnego i organizacyjnego monitoringu wód podziemnych w Polsce (Diagnosis of the legal and organizational status of groundwater monitoring in Poland). Przegląd Geologiczny, 65, 11/2: 1393–1397.
  52. Yang Q., Zhang L., Wang H., Martín J.D. 2022. Bioavailability and health risk of toxic heavy metals (As, Hg, Pb and Cd) in urban soils: a Monte Carlo simulation approach. Environmental Research, 214: 113772.
  53. Zhang Q., Feng M., Hao X. 2018. Application of Nemerow Index Method and Integrated Water Quality Index Method in Water Quality Assessment of Zhangze Reservoir. IOP Earth and Environmental Science, 128: 012160.
Language: English
Page range: 13 - 22
Submitted on: Oct 15, 2023
|
Accepted on: Jan 19, 2024
|
Published on: Mar 13, 2024
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2024 Natalia Bareła, Dominika Dąbrowska, published by University of Silesia in Katowice, Faculty of Natural Sciences
This work is licensed under the Creative Commons Attribution 4.0 License.