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Investigation of the chemical processes controlling the groundwater quality of Ilia Prefecture

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Abstract

Neogene formations display complex structure, and host confined aquifers that are alternated, and very often interrupted by impermeable clay layers. In many cases, the lack of hydrogeological information and data on those aquifers hinders research and planning of exploitation projects. This study attempts to exploit the available information that can be derived from a sampling, and the corresponding chemical analyses, to reconstruct the hydrogeological image of such areas. Thus, the chemical composition is used as a tool for natural tracing of the groundwater origin and movement in a previously unknown environment such as that of Ilia region, which was selected as the application area. The distribution maps of certain hydrochemical parameters, combined with the appropriate hydrochemical and isotopic data, contributed to the classification of the groundwater samples by linking the hydrochemical processes with the samples’ locations as well as the origin of the aquifers’ recharge water. At the same time, the effectiveness of the used methodology was evaluated. The use of R-mode factor analysis led to the determination of the basic hydrochemical processes that shape the groundwater quality. The analysis showed that the reducing environment is the defining factor that regulates the presence of the various chemical compounds. Finally, the conceptual model of the aquifers emerged from the analysis of all the data. This analysis also pointed out that the recharge of the local aquifers takes place mainly through the river beds and laterally from their contact with the carbonate rocks.

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References

  • Andrews N, Fontes JC, Aranyossy JF, Dodo A, Edmunds WM, Joseph A, Travi Y (1994) The evolution of alkaline groundwaters in the continental intercalaire aquifer of the Irhazer Plain, Niger. Water Resour Res 30(1):45–61. https://doi.org/10.1029/93WR02226

    Article  Google Scholar 

  • Bonnesen EP, Larsen F, Sonnenborg TO, Klitten K, Stemmerik L (2009) Deep saltwater in Chalk of North-West Europe: origin, interface characteristics and development over geological time. Hydrogeol J 17:1643–1663

    Article  Google Scholar 

  • Carillo-Rivera JJ, Cardona A, Moss D (1996) Importance of the vertical component of groundwater flow: a hydrogeological approach in the valley of San Luis Potosi, Mexico. J Hydrol. 185:23–44. https://doi.org/10.1016/S0022-1694(96)03014-4

    Article  Google Scholar 

  • Chenini I, Farhat B, Mammou AB (2010) Identification of major sources controlling groundwater chemistry from a multilayered aquifer system. Chem Speciat Bioavailab 22(3):183–189. https://doi.org/10.3184/095422910X12829228276711

    Article  Google Scholar 

  • Christodoulou G (1971) Über die Neogene Ablagerunen im Gebiet von Kyllini (NW Peloponnes). IGME Publication, New York, pp 1–60

    Google Scholar 

  • Craig H (1961) Isotopic variations in meteoric waters. Science 133:1702–1703. https://doi.org/10.1126/science.133.3465.1702

    Article  Google Scholar 

  • Davis JC (1986) Statistics and data analysis in geology. Wiley, New York, p 647

    Google Scholar 

  • Directive 98/83/EU (1998) Council Directive 98/83/EC of 3 November 1998 on the quality of water intended for human consumption

  • Edmunds WM, Smedley PL (1996) Groundwater geochemistry and health: an overview. In: Appleton JD, Fuge R, MaCall JH (eds) Environmental geochemistry and health. BGS, Special Publication, New York, pp 91–105

    Google Scholar 

  • Edmunds WM, Smedley PL (2000) Residence time indicators in groundwater: the East Midlands Triassic sandstone aquifer. Appl Geochem 15:737–752. https://doi.org/10.1016/S0883-2927(99)00079-7

    Article  Google Scholar 

  • Edmunds WM, Carrillo-Rivera JJ, Cardona A (2002) Geochemical evolution of groundwater beneath Mexico City. J Hydrol 258:1–24. https://doi.org/10.1016/S0022-1694(01)00461-9

    Article  Google Scholar 

  • ESSO (Perry L and Temple GP) (1962) Geological reports for the concession areas of Paxoi, Zakynthos–Kyllini, Filiatra and Pyrgos

  • Fleury JJ (1980) Les zones de Gavrovo-Tripolitza et du Pinde-Olonos (Grèce continentale et Péloponnèse du Nord): evolution d’une plate-forme et d’un bassin dans leur carde alpin. Société Géologique du Nord, Special Publication 4, 651 pp

  • Fountoulis I (1994) Neotectonic evolution of western-central Peloponnese. Ph.D. thesis, University of Athens, Gaia 7, 386 pp

  • Gat JR, Carmi I (1970) Evolution of the isotopic composition of the atmospheric water in the Mediterranean Sea area. J Geophys Res 75:3039–3048. https://doi.org/10.1029/JC075i015p03039

    Article  Google Scholar 

  • Grützmacher G, Kumar PJS, Rustler M, Hannappel S, Sauer U (2013) Geogenic groundwater contamination—definition, occurrence and relevance for drinking water production. Zbl. Geol. Paläont. 1(1):69–75

    Google Scholar 

  • Hageman J (1976) Stratigraphy and sedimentary history of the Upper Cenozoic of the Pyrgos area (Western Peloponnesus), Greece. Ann Geol Pays Helleniques 28:299–333

    Google Scholar 

  • Kaberis E, Alexiadis H, Philipe G (1993) Geological map of Greece, scale 1: 50,000, Amaliada sheet, Institute of Geological and Mining Research (IGME), Athens

  • Kaiser HF (1958) The varimax criterion for analytic rotation in factor analysis. Psyhometrica 23:187–200

    Article  Google Scholar 

  • Kamberis Ε (1987) Geological and oil study of NW Peloponnese. Ph.D. thesis, National Technical University of Athens, 141 pp

  • Karapanos E (2009) Hydrogeological—hydrochemical parameters of the drained Mouria Lake (Prefecture of Ilia), controlling the rehabilitation and the sustainable management of the wetlands. Ph.D. thesis, University of Patras. 310 pp (in Greek)

  • Karapanos E, Katsanou K, Karli A, Lambrakis N (2011) Evaluation of the geochemical conditions in the deep aquifer system in Vounargo area (SW Greece) based on hydrochemical data. In: Advances in the research of aquatic environment. Lambrakis N, Stournaras G, Katsanou K (Eds). Environ Earth Sci 2:201-210

  • Katsanou K, Siavalas G, Lambrakis N (2010) Water origin of the Kokkino Stefani spring (W. Greece) based on hydrogeochemical data. Adv Res Karst Media Environ Earth Sci 1:195–201

    Article  Google Scholar 

  • Katsanou K, Siavalas G, Lambrakis N (2012a) The thermal and mineral springs of Aitolakarnania Prefecture: function mechanism and origin of groundwater. Environ Earth Sci 65(8):2351–2364. https://doi.org/10.1007/s12665-011-1451-8

    Article  Google Scholar 

  • Katsanou K, Charalabopoulos S, Lambrakis N (2012b) Contribution to the study of Greek thermal springs. Origin, hydrogeological and hydrochemical characteristics of Kyllini thermal water, NW Peloponnese, Greece. Proc of IV International Conference on technology seawater intrusion in coastal aquifers, April 24–26, 2012, Alicante 1:297-307

  • Katsanou K, Siavalas G, Lambrakis N (2013) Geochemical controls on fluoriferous groundwaters of the Pliocene and the more recent aquifers: the case of Aigion region, Greece. J Contam Hydrol. 155:55–68. https://doi.org/10.1016/j.jconhyd.2013.08.009

    Article  Google Scholar 

  • Katsanou K, Lambrakis N, D’Alessandro W, Siavalas G (2017) Chemical parameters as natural tracers in hydrogeology: a case study of Louros karst system, Greece. Hydrogeol J 25(2):487–499. https://doi.org/10.1007/s10040-016-1492-x

    Article  Google Scholar 

  • Kim K, Yun ST (2005) Buffering of sodium concentration by cation exchange in the groundwater system of a sandy aquifer. Geochem J 39:273–284

    Article  Google Scholar 

  • Koukouvelas I, Mpresiakas A, Sokos E, Doutsos T (1996) The tectonic setting and earthquake ground hazards of the 1993 Pyrgos earthquake, Peloponnese, Greece. J Geol Soc London 153:39–49. https://doi.org/10.1144/gsjgs.153.1.0039

    Article  Google Scholar 

  • Lambrakis N, Antonakos A, Panagopoulos G (2004a) The use of multicomponent statistical analysis in hydrogeological environmental research. Water Res 38:1862–1872. https://doi.org/10.1016/j.watres.2004.01.009

    Article  Google Scholar 

  • Lambrakis N, Soren J, Panagopoulos G and Pytikakis M (2004) Hydrochemical conditions groundwater quality in the lowland zone of the Pineios River basin, Prefecture of Ileia. In: Proc. of the 10th International Congress of the Geological Society of Greece, Thessaloniki, 15–17 April, 2002–2011 (in Greek)

  • Majkić-Dursun B, Petković A, Dimkić M (2015) The effect of iron oxidation in the groundwater of the alluvialaquifer of the Velika Morava River, Serbia, on the clogging of water supply wells. J Serb Chem Soc 80(7):947–957

    Article  Google Scholar 

  • Mariolakos I, Fountoulis I and Lekkas E (1995). The Neotectonics of NW Peloponnese—the earthquake of October 16, 1988. XV Congress of the Carpatho-Balcan Geological Association, Seminar on Active Faults, Geol. Soc. Greece, Athens, pp 33–41

  • Matalas NC, Reiher BJ (1967) Some comments on the use of factor analyses. Water Resour Res 3(1):213–223. https://doi.org/10.1029/WR003i001p00213

    Article  Google Scholar 

  • Miao S, DeLaune RD, Jugsujinda A (2006) Influence of sediment redox conditions on release/solubility of metals and nutrients in a Louisiana Mississippi River deltaic plain freshwater lake. Sci Total Environ 371(1–3):334–343

    Article  Google Scholar 

  • Mouna K, Fadoua H, Gueddari M, Rachida B, Luís R (2011) Hydrochemical and statistical study of groundwaters in Gabes-south deep aquifer (south-eastern Tunisia). Phys Chem Earth 36:187–196. https://doi.org/10.1016/j.pce.2010.02.006

    Article  Google Scholar 

  • NATURA (2000) http://natura2000.eea.europa.eu/#

  • NSSG-National Statistical Service of Greece (2001) Permanent Population. Prefectures, municipalities, municipalities, municipal and community districts and settlements, M01. http://www.statistics.gr/el/statistics/-/publication/SAM03/2001

  • Papatheodorou G, Lambrakis N, Panagopoulos G (2007) Application of multivariate statistical procedures to the hydrochemical study of a coastal aquifer: an example from Crete, Greece. Hydrol Process 21:1482–1495. https://doi.org/10.1002/hyp.6322

    Article  Google Scholar 

  • Parkhurst DL and Appelo CAJ (2013) Description of input and examples for PHREEQC version 3. A computer program for speciation, batch-reaction, one-dimensional transport, and inverse geochemical calculations: U.S. Geological Survey Techniques and Methods, book 6, Chapter A43, 497 pp https://pubs.usgs.gov/tm/06/a43/

  • Philippson A (1959) Die Griechischen Landschaften. I–IV, Klostermann

    Google Scholar 

  • Ramsar Convention Bureau (1996) Criteria for Identifying Wetlands of International Importance. Annexes to Recommendation 4.2, Montreux, Switzerland, 1990, and Resolution V1.2, Brisbane, Australia, 1996, Ramsar Convention Bureau, Gland, Switzerland

  • Reimanna CL, Filzmoserb P, Garrettc R (2002) Factor analysis applied to regional geochemical data: problems and possibilities. Appl Geochem 17:185–206

    Article  Google Scholar 

  • Remoundaki E, Vasileiou E, Philippou A, Perraki M, Kousi P, Hatzikioseyian A, Stamatis G (2016) Groundwater deterioration: the simultaneous effects of intense agricultural activity and heavy metals in soil. Procedia Eng 162:545–552. https://doi.org/10.1016/j.proeng.2016.11.099

    Article  Google Scholar 

  • Renz C (1955) Die vorneogene Stratigraphic der normal sedimentaren Formationen Griechenlands. IGSR, Athen, p 637

    Google Scholar 

  • Reyment R, Jöreskog KG (1993) Applied factor analysis in the natural sciences. Cambridge University Press, London

    Book  Google Scholar 

  • Smedley PL, Kinniburgh DG (2002) A review of the source, behavior and distribution of arsenic in natural waters. Appl Geochem 17:517–568. https://doi.org/10.1016/S0883-2927(02)00018-5

    Article  Google Scholar 

  • Stamatopoulos L, Kontopoulos N (1994) Geomorphology and evolution of the region between Lapa and Eleotopos, Northwestern Peloponessus (Greece). Il Quaternario 7:537–544

    Google Scholar 

  • Stamatopoulos L, Belluomini G, Branca M, Manfra L, Voltaggio M (1998) 230Th/234U and isoleucine Epimerization dating of Quaternary marine deposits in Western Peoloponesus (Greece). Z Geomorph NF 42:245–253

    Google Scholar 

  • Sun Z, Soldatova EA, Guseva NV, Shvartsevb SL (2014) Impact of human activity on the groundwater chemical composition of the south part of the Poyang Lake Basin. Int Conf Agric Biosyst Eng IERI Procedia 8:113–118

    Article  Google Scholar 

  • U.S. Environmental Protection Agency (1976) Quality criteria for water. Washington, DC, 501 pp

  • Yang Q, Zhang J, Wang Y, Fang Y, Martín JD (2015) Multivariate statistical analysis of hydrochemical data for shallow ground water quality factor identification in a coastal aquifer. Pol J Environ Stud 24(2):769–776

    Google Scholar 

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Acknowledgements

The current research is a result of two projects that were founded by Ilia Prefecture and Kastro Kyllinis municipality. The authors would like to particularly thank the colleagues that took part, i.e. Stavros Charalambopoulos for the help in sampling for both projects and George Siavalas for the nitrates, and nitrites determination of Ilia project.

Athanasia Koulouri is also thanked for the sampling and determination of the anions of a number of 20 samples that were used for the sake of completeness.

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Correspondence to K. Katsanou.

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Dimitriadou, S., Katsanou, K., Stratikopoulos, K. et al. Investigation of the chemical processes controlling the groundwater quality of Ilia Prefecture. Environ Earth Sci 78, 401 (2019). https://doi.org/10.1007/s12665-019-8402-1

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