PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Tytuł artykułu

Changes in the quality of shallow groundwater in agriculturally used catchment in the Wiśnickie Foothills (Southern Poland)

Treść / Zawartość
Identyfikatory
Warianty tytułu
Zmiany jakości płytkich wód poziemnych w użytkowanej rolniczo zlewni na Pogórzu Wiśnickim (Południowa Polska)
Języki publikacji
EN
Abstrakty
EN
The aim of this study was to examine the changes in the chemical composition of shallow groundwater and its quality that have occurred in the last decade in an agriculturally used, heavily populated and characterized by a complex geological structure, catchment of the Stara Rzeka river, located in the flysch part of the Outer Carpathians. Water samples were collected during 2013 from 19 still operating wells. Analyses of pH, electrolytic conductivity and chemical composition by ion chromatography were conducted. The obtained results were compared with the results of studies conducted in 2003 for the same wells. The quality of groundwater and its suitability for consumption was assessed based on the regulations currently existing in Poland. 21% of the wells still do not meet the requirements for drinking water in terms of at least one component. However, there was a decrease in the concentration of mineral forms of nitrogen and phosphorus in most of the wells and their mean concentration as compared to 2003 was reduced. In terms of physical and chemical characteristics groundwater of this region is typical of the hypergenic zone of the temperate climate. The highest concentrations were observed for Ca2+ and HCOˉ3 - ions, while K+ and Clˉ were characterized by the largest variability. Principal Component Analysis (PCA) demonstrated that the factors determining the quality and chemical composition of the analyzed waters include the composition of bedrock (mineralogy of the rock environment) and human economic activity, and that they have not been significantly changed over the past decade.
PL
Celem opracowania jest zbadanie zmian składu chemicznego płytkich wód podziemnych i ich jakości jakie zaszły w ostatnim dziesięcioleciu w użytkowanej rolniczo, silnie zaludnionej, cechującej się skomplikowaną budową geologiczną zlewni Starej Rzeki, położonej we fliszowych Karpatach Zewnętrznych. W 2013 roku z 19 nadal użytkowanych studni pobrano próbki wody i poddano je analizie pH, przewodnictwa elektrolitycznego właściwego oraz składu chemicznego metodą chromatografii jonowej. Uzyskane wyniki porównano z wynikami badań z 2003 roku dla tych samych studni. Jakość wody podziemnej i jej przydatność do spożycia przez ludzi oceniono na podstawie obowiązujących w Polsce przepisów. 21% studni nadal nie spełnia wymogów stawianych wodzie do picia w zakresie przynajmniej jednego składnika, jednakże zaobserwowano spadek stężenia mineralnych form azotu i fosforu w większości studni oraz zmniejszenie się ich stężenia średniego w stosunku do 2003 r. Pod względem cech fizycznych i chemicznych wody podziemne tego regionu są typowe dla strefy hipergenicznej klimatu umiarkowanego. Najwyższe stężenia miały jony Ca2+ i HCOˉ3-, a najwyższą zmiennością cechowały się natomiast jony K+ i Clˉ. Analiza składowych głównych (PCA) dowiodła, że czynnikami decydującymi o jakości i składzie chemicznym wód są skład podłoża skalnego oraz gospodarcza działalność człowieka i nie uległy one znaczącym zmianom w minionym dziesięcioleciu.
Rocznik
Strony
19--25
Opis fizyczny
Bibliogr. 38 poz., rys., tab., wykr.
Twórcy
  • Jagiellonian University, Faculty of Geography and Geology, Institute of Geography and Spatial Management, Poland
  • Jagiellonian University, Faculty of Geography and Geology, Institute of Geography and Spatial Management, Poland
  • Jagiellonian University, Faculty of Geography and Geology, Institute of Geography and Spatial Management, Poland
  • University of Agriculture in Krakow, Faculty of Agriculture and Economics, Poland
Bibliografia
  • 1. Balderacchi, M., Benoit, P., Cambier, P., Eklo, O.M., Gargini, A., Gemitzi, A., Gurel, M., Klove, B., Nakic, Z., Predaa, E., Ruzicic, S., Wachniew, P. & Trevisan, M. (2013). Groundwater pollution and quality monitoring approaches at the European Level, Critical Reviews in Environmental Science and Technology, 43, 4, pp. 323-408.
  • 2. Caissie, D., Pollock, T.L. & Cunjak, R.A. (1996). Variation in stream water chemistry and hydrograph separation in a small drainage basin, Journal of Hydrology, 178, pp. 137-157.
  • 3. Davis, S.N. & DeWiest, R.J.M. (1970). Hydrogeology, John Wiley, New York 1970.
  • 4. Council Directive 98/83/EC of 3 November 1998 on the quality of water intended for human consumption.
  • 5. Elhatip, H., Afsin, M., Kuscu, I., Dirik, K., Kumac, Y. & Kavurmaci, M. (2003). Influence of human activities and agriculture on groundwater quality of Kayseri-Incesu-Dokuzpinar springs, central Anatolian part of Turkey, Environmental Geology, 44, pp. 490-494.
  • 6. German, K., (1992). Types of natural environment in the western part of the Carpathian Foothills, Habilitation Thesis UJ, 246.
  • 7. Hancock, PJ. (2002). Human impacts on the stream-groundwater exchange zone, Environmental Management, 29, 6, pp. 763-781.
  • 8. Hem, J.D. (1985). Study and interpretation of the chemical characteristics of natural water, U.S. Geological Survey, Alexandria 1985.
  • 9. Hess, M. (1965). Climate zones in Poland’s Western Carpathians, Scientific Papers of the JU Geography, 11, pp. 1-267.
  • 10. Jeong, C.H. (2001). Effect of land use and urbanization on hydrochemistry and contamination of groundwater from Taejon area, Korea, Journal of Hydrology, 253, pp. 194-210.
  • 11. Kaszowski, L. & Święchowicz, J. (1995). Geological structure of the marginal zone of the Carpathian Foothills between Raba and Uszwica, in: Dynamics and anthropogenic environmental transformations of the Carpathian marginal zone between Raba and Uszwica, Kaszowski, L. (Ed.). Institute of Geography JU, Kraków 1995.
  • 12. Kondracki, J. (1994). Polish geography. Mesoregions physical and geographical, PWN, 339, Warszawa 1994.
  • 13. Mahavi, A.H., Nouri, J., Babaei, A.A. & Nabizadeh, R. (2005). Agricultural activities impact on groundwater nitrate pollution, International Journal of Environmental Science and Technology, 2, 1, pp. 41-47.
  • 14. Olewicz, Z.R. (1968). Stratigraphy of the beds on the Bochnia unit and the border of the Silesian unit between Wieliczka and Bochnia and their original position in the Carpathian or Foreland sedimentary, Publications of the Petroleum Institute, Śląsk Publishing House, Katowice 1968.
  • 15. Olewicz, Z.R. (1973a). Tectonic structure of the Bochnia unit and of the marginal part of the Silesian unit between the rivers Raba and Uszwica, Acta Geologica Polonica, 23, 4, pp. 701-761.
  • 16. Olewicz, Z.R. (1973b). Geology of the Fore-Carpathian region between Wieliczka and Bochnia. Publications of the Petroleum Institute, Śląsk Publishing House, Katowice 1973.
  • 17. Ongley, E.D. (1996). Control of water pollution from agriculture. FAO Irrigation and Drainage Paper 55, FAO, Rome1996.
  • 18. Obrębska-Starkel, B. & Leśniak, B. (1988). Climate, in: Tarnów Voivodeship - monograph, Warszyńka, J. (Eds.). PAN, Kraków 1988.
  • 19. Pietrzak, M. (2005). Water and sewage management in the mountaneous catchment area located in the Wiśnickie Foothills, in: Dynamics of nutrients in runoff, surface and groundwater in catchments with different land use in the Wiśnickie Foothills, M. Żelazny (Eds.), IGiGP UJ, Kraków 2005.
  • 20. Regulation of the Minister of Health of 29 March 2007 on the quality of water intended for human consumption. Journal of Laws No. 1, Item 417.
  • 21. Regulation of the Minister of Health of 20 April 2010 amending the regulation on the quality of water intended for human consumption. Journal of Laws No. 72. Item 466.
  • 22. Schmoll, O., Howard, G., Chilton, J. & Chorus, I. (2006). Protecting groundwater for health. Managing the quality of drinking-water sources, WHO, IWA Publishing, London 2006.
  • 23. Seyhan, E., Van De Griend, A.A. & Engelen, G.B. (1985). Multivariate analysis and interpretation of the hydrochemistry of a dolomitic reef aquifer, Northern Italy, Water Resources Research, 21, 7, pp. 1010-1024.
  • 24. Singh, K.P., Malik, A., Singh, V., Mohan, D. & Sinha, S. (2005). Chemometric analysis of groundwater data of alluvial aquifer of Gangetic plain, North India, Analytica Chimica Acta, 550, pp. 82-91.
  • 25. Siwek, J. & Chełmicki, W. (2004). Geology and land-use related pattern of spring water quality, Case study from the catchments of the Małopolska Upland (S. Poland), Geologica Acta, 2, pp. 167-174.
  • 26. Siwek, J.P. (2012). Changes in stream water chemistry in a small catchments of the Carpathian Foothills marginal zone. Kraków: IGiGP UJ: 113.
  • 27. Skiba, S. (1992). Soils of the Stara Rzeka catchment in the Wielickie Foothills, Scientific Papers of the JU Geography.
  • 28. Skiba, S. & Drewnik, M. (1995). Resistance of soils of the Wielickie Foothills to chemical, Scientific Papers of the JU Geography.
  • 29. Skiba, S., Drewnik, M. & Klimek, M. (1995). Silt soils at the marginal zone of the Carpathian Foothills between Raba and Uszwica, in: Dynamics and anthropogenic environmental transformations of the Carpathian marginal zone between Raba and Uszwica, Kaszowski, L. (Ed.). Institute of Geography JU, Kraków, pp. 27-33.
  • 30. Słowik, A. (2003). Chemical composition of groundwater in the area of the Brzeźnica elevation in the Wiśnickie Foothills, MSc thesis, Department of Hydrology IGSM JU, Kraków 2003.
  • 31. Spalding, R.F. & Exner, M.E. (1993). Occurrence of nitrate in groundwater - a review, Journal of Environmental Quality, 22, pp. 392-402.
  • 32. Starkel, L. (1988). Topography, in: Tarnów Voivodeship -monograph, Warszyńka, J. (Eds.). PAN, Kraków 1988.
  • 33. Święchowicz, J. & Michno, A. (2005). Study Area, in: Dynamics of nutrients in runoff, surface and groundwater in catchments with different land use in the Wiśnickie Foothills, M. Żelazny (Eds.). IGiGP UJ, Kraków 2005.
  • 34. Thyne, G., Guler, C. & Poeter, E. (2004). Sequential analysis of hydrochemical data for watershed characterization, Ground Water, 42, 5, pp. 711-723.
  • 35. Voundouris, K., Panagopoulos, A. & Koumantakis, J. (2000). Multivariate statistical analysis in the assessment of hydrochemistry of the Northern Korinthia Prefecture alluvial aquifer system (Peloponnese, Greece), Natural Resources Research, 9, 2, pp. 135-146.
  • 36. Voza, D.,Vukovic, M., Takic, L., Nikolic, D. & Mladenovic- -Ranisavljevic, I. (2015) Application of multivariate statistical techniques in the water quality assessment of Danube river, Serbia, Archives of Environmental Protection, 41, 4 pp. 96-103.
  • 37. Vrba, J. (2003). The impact of aquifer intensive use on groundwater quality, in: Intensive use of groundwater: challenges and opportunities Llamas, R. & Custodio, E. (Eds.): AA. Balkema Publishers, Lisse/Abingdon, Exton, Tokyo 2003.
  • 38. Żelazny, M. (2005). Dynamics of nutrients in runoff, surface and groundwater in catchments with different land use in the Wiśnickie Foothills, IGSM JU, Kraków 2005.
Uwagi
Opracowanie rekordu w ramach umowy 509/P-DUN/2018 ze środków MNiSW przeznaczonych na działalność upowszechniającą naukę (2019).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-76015af4-f764-4999-b48b-786afbddc761
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.