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Variability of heavy metal concentrations in waters of fishponds affected by the former lead and zinc mine in Southern Poland

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
The fluctuations of heavy metal (Cd, Pb, Zn, Mn and Fe) concentrations and physicochemical parameters of water were studied for five fishponds located in the Matylda catchment affected by the former Pb and Zn ore mine in the Upper Silesian Industrial Region, southern Poland. Generally, metal concentrations in dissolved phase in pond water were low for most of the year, but their drastic increases were periodically observed (up to Cd 5.8, Pb 147.3, Zn 800.3, Mn 987.8, and Fe 2532.8 μg·dm–3). The factors determining metal concentrations in the pond water have been discussed.
Rocznik
Strony
121--136
Opis fizyczny
Bibliogr. 28 poz., tab., rys.
Twórcy
  • Institute of Nature Conservation, Polish Academy of Sciences, ul. Mickiewicza 33, 31-120 Cracow, Poland
autor
  • AGH-University of Science and Technology, ul. Mickiewicza 30, 30-059 Cracow, Poland
Bibliografia
  • [1] AUDRY S., GROSBOIS C., BRIL H., SCHAFER J., KIERCZAK J., BLANC G., Post-depositional redistribution of trace metals in reservoir sediments of a mining/smelting-impacted watershed (the Lot River, SW France), Appl. Geochem., 2010, 25, 778.
  • [2] CISZEWSKI D., KUBSIK U., ALEKSANDER-KWATERCZAK U., Long-term dispersal of heavy metals in a catchment affected by historic lead and zinc mining, J. Soils Sediments, 2012, 12, 1445.
  • [3] MÜLLER J., RUPPERT H., MURAMATSU Y., SCHNEIDER J., Reservoir sediments, A witness of mining and industrial development (Malter Reservoir, eastern Erzgebirge, Germany), Environ. Geol., 2000, 39(12), 1341.
  • [4] CISZEWSKI D., ALEKSANDER-KWATERCZAK U., POCIECHA A., SZAREK-GWIAZDA E., WALOSZEK A., WILK-WOŹNIAK E., Small effects of a large sediments contamination with heavy metals on aquatic organisms in the vicinity of an abandoned lead and zinc mine, Environ. Monit. Assess., 2013, 185, 9825.
  • [5] EC, MENVIQ (Environmental Canada and Ministere de l’Environment du Cuebec), Interim criteria for quality assessment of St, Lawrence River sediment, Environment Canada, Ottawa 1992.
  • [6] CHENG S., GROSSE W., KARRENBROCK F., THOENNESSEN M., Efficiency of constructed wetlands in de-contamination of water polluted by heavy metals, Ecol. Eng., 2002, 18, 317.
  • [7] CALMANO W., VON DER KAMMER F., SCHWARTZ R., Characterization of redox conditions in soils and sediments: heavy metals, [in:] P. Lens, T. Grotenhuis, G. Malina, H. Tabak (Eds), Soil and Sediment Remediation, IWA Publ., London 2005, 102–120.
  • [8] CAPPUYNS V., SWENNEN R., Kinetics of element release during combined oxidation and pH stat leach-ing of anoxic river sediments, Appl. Geochem., 2005, 20, 1169.
  • [9] MONCUR M.C., PTACEK C.J., BLOWES D.W., JAMBOR J., Release, transport and attenuation of metals from an old tailings impoundment, Appl. Geochem., 2005, 20, 639.
  • [10] WILK-WOŹNIAK E., POCIECHA A., CISZEWSKI D., ALEKSANDER-KWATERCZAK U., WALUSIAK E., Phyto and zooplankton in fishponds contaminated with heavy metal runoff from a lead-zinc mine, Oceanol. Hydrobiol. Stud., 2011, 40, 77.
  • [11] MICHAILOVA P., WARCHAŁOWSKA-ŚLIWA E., SZAREK-GWIAZDA E., KOWNACKI A., Does biodiversity of macroinvertebrates and genome response of Chironomidae larvae (Diptera) reflect heavy metal pollution in a small pond?, Environ. Monit. Assess., 2012, 184, 1.
  • [12] ALEKSANDER-KWATERCZAK U., CISZEWSKI D., Groundwater hydrochemistry and soil pollution in a catchment affected by an abandoned lead-zinc mine: functioning of a diffuse pollution source, Environ. Earth Sci., 2012, 65, 1179.
  • [13] SZAREK-GWIAZDA E., Factors influencing the concentrations of heavy metals in the Raba River and selected Carpathian dam, Studia Naturae, 2013, 60, 1 (in Polish).
  • [14] CABAŁA J., Development of oxidation in Zn–Pb deposits in Olkusz area, [in:] Mineral Deposits at the Beginning of the 21st Century, Balkema, 2001, 121–124.
  • [15] BUTLER T.W. II, Geochemical and biological controls in trace metal transport in an acid mine impacted watershed, Environ. Geochem. Health, 2006, 28, 231
  • [16] STUMM W., MORGAN J.J., Aquatic chemistry. Chemical equilibria and rates in natural waters, Wiley, New York 1996.
  • [17] SZAREK-GWIAZDA E., ŻUREK R., Distribution of trace elements in meromictic pit lake, Water, Air, Soil Pollut., 2006, 174, 181.
  • [18] TAILLEFERT M., GAILLARD J.F., Reactive transport modeling of trace elements in the water column of a stratified lake: iron cycling and metal scavenging, J. Hydrol., 2002, 256, 16.
  • [19] WEBSTER J.G., SWEDLUNG P.J., WEBSTER K.S. Trace element adsorption onto an acid, mine drainage iron(III) oxyhydroxy sulfate, Environ. Sci. Technol., 1998, 32, 1361.
  • [20] AVERHOFF O.L., GÓMEZ A.B., DEL REY E.D., AGUIAR C.B., VILLAZÓN M.A., Chemical, physical and bio-logical characteristics of Saladito Reservoir, Cienfuegos Province, Cuba, Lakes Res.: Res. Manage., 2007, 12, 43.
  • [21] LINNIK P.M., Zinc, lead and cadmium speciation in Dnieper water-bodies, Lakes Res.: Res. Manage., 2000, 5, 261.
  • [22] MCDOWELL W.H., LIKENS G.E., Origin, composition, and flux of dissolved organic carbon in the Hub-bard Brook Valley, Ecol. Monogr., 1988, 58, 177.
  • [23] JACKSON L.J., Paradigms of metal accumulation in rooted aquatic vascular plants, Sci. Tot. Environ., 1998, 219, 223.
  • [24] LI G., XUE P., YAN C., LI Q., Copper biosorption by Myriophyllum spicatum. Effects of temperature and pH, Korean J. Chem. Eng., 2010, 27 (4), 1239.
  • [25] KESKINKAN O., GOKSU M.Z.L., YUCEER A., BASIBUYUK M., Comparison of the adsorption capabilities of Myriophyllum spicatum and Ceratophyllum demersum for zinc, copper and lead, Eng. Life Sci., 2007, 7, 192.
  • [26] SZYMCZYK S., GRABIŃSKA B., KOC-JURCZYK J., Concentrations of Zn, Pb, Cu, Cd and Ni in the waters of the Narew river and some of its tributaries, J. Elementol., 2007, 12, 199.
  • [27] SUSCHKA J., RYBOSZ S., LESZCZYNSKA I., Surface water and sediment contamination in an old indus-trial region of Poland – two critical examples, Water Sci. Technol., 1994, 29, 107.
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Uwagi
PL
Opracowanie ze środków MNiSW w ramach umowy 812/P-DUN/2016 na działalność upowszechniającą naukę (zadania 2017).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-591052ba-bc2e-4dab-9743-7081a19cbbb6
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