Have a personal or library account? Click to login
Waste disposal sites as sources of mercury in the atmosphere in the coastal zone of the Gulf of Gdańsk (southern Baltic Sea) Cover

Waste disposal sites as sources of mercury in the atmosphere in the coastal zone of the Gulf of Gdańsk (southern Baltic Sea)

Open Access
|Apr 2013

References

  1. [1] Bełdowska M., Falkowska L. & Marks R. (2003). Total gaseous mercury over the coastal zone of the Gulf of Gdańsk. Oceanological and Hydrobiological Studies. 32, 3–18.
  2. [2] Bełdowska M., Falkowska L. & Lewndowska A. (2006a). Airborne trace metals (Hg, Cd, Pb, Zn) of the coastal region, Gulf of Gdańsk. Oceanological and Hydrobiological Studies. 35, 159–169.
  3. [3] Bełdowska M., Falkowska L., Siudek P. & Otręba M., (2006b). Influence of building activities and high-temperature processes on the concentration of gaseousmercury in air. Environment Protection Engineering. 32(3), 31–38.
  4. [4] Bełdowska M., Falkowska L., Siudek P., Gajecka A., Lewandowska A., Rybka A. & Zgrundo A. (2007). Atmospheric Mercury over the coastal zone of the Gulf of Gdańsk. Oceanological and Hydrobiological Studies. Gdańsk. 34, 9–18.
  5. [5] Bełdowska M. & Falkowska L. (2007). Exchange of mercury between air and seawater in day/night cycle, during summer and winter. Oceanological and Hydrobiological Studies. Gdańsk. 34, 51–68.
  6. [6] Bełdowska M., Zawalich K., Falkowska L., Siudek P. & Magulski R. (2008). Total gaseous mercury in the area of southern Baltic and in the coastal zone of the Gulf of Gdansk during spring and autumn. Environment Protection Engineering. Wroclaw. 34(4), 139–144.
  7. [7] Biziuk M. (2001). Pestycydy. Występowanie, oznaczanie i unieszkodliwianie. Wyd. Naukowo Techniczne Warszawa.. 229–263.
  8. [8] Carpi A. & Lindberg S.E. (1998). Application of a teflon dynamic flux chamber for quantifying soil mercury flux: Tests and results over background soil. Atmospheric Environment. 32, 873–882. http://dx.doi.org/10.1016/S1352-2310(97)00133-710.1016/S1352-2310(97)00133-7
  9. [9] Ebinghaus R., Turner R.R., Lacerda L. D., Vasiliev O. & Salomons W. (1999). Mercury Contaminated Sites. Characterization, Risk Assessment and Remediation. Springer — Verlag. Berlin Heidelberg New York. ISBN 3-540-63731-1 10.1007/978-3-662-03754-6
  10. [10] Falkowska L., Lewandowska A. & Magoński J. (2005). Transfer of chemical substances through the Marine water — atmosphere boundary layer. Archives of Environmental Protection. 31(3), 5–14.
  11. [11] Gworek B. & Rateńska J. (2009). Mercury migration in pattern air-soil-plant. Ochrona Środowiska i Zasobów Naturalnych. Warszawa. 41, 614–623.
  12. [12] Hławiczka S. (2008). Mercury in the atmospheric environment. IPIŚ PAN. Zabrze. 73, 158
  13. [13] Holmes C.D., Jacob D.J. & Yang X., (2006). Global lifetime of elemental mercury against oxidation by atomic bromine in the free troposphere. Geophysical Research Letters. 33, 1–5. DOI:10.1029/2006GL027176. 10.1029/2006GL027176
  14. [14] Ignatowicz K. (2008a). Pesticide and heavy metals concentrations in natural water near graveyard in Podlasie Region. Environmental Engineering, The International Conference May 22–23, Faculty of Environmental Engineering Vilnius Gediminas Technical University. 163–168.
  15. [15] Ignatowicz K. (2008b). Pesticide waste burials in the Area of Podlaskie Provence. Środkowo-Pomorskie Towarzystwo Naukowe Ochrony Środowiska. Koszalin. 10, 545–555.
  16. [16] Jackson T.A., (1998). Mercury in aquatic ekosystem. IN: Metal metabolizm in Aquatic Environment. Chapman & Hall. London. 178–249.
  17. [17] Kabata-Pendias A. (1992). —Biogeochemia rtęci w różnych środowiskach. Rtęć w środowisku -problemy ekologiczne i metodyczne. Ossolineum. 7–18.
  18. [18] Kabata-Pendias A. & Pendias H. (1999). Biogeochemia pierwiastków śladowych. Wydawnictwo Naukowe PWN. Warszawa. 2, 170–183.
  19. [19] Kabata-Pendias A. (2011). Trace Elements in soils and Plants. CRC Press Taylor and Francis Group LLC. 520.
  20. [20] Klojzy-Kaczmarek B. & Mazurek J. (2008). Research on Mercury content in selected petroleum deposits of Carpathian region (Poland). Polityka Energetyczna. 11, 211–217.
  21. [21] Klojzy-Kaczmarek B. & Mazurek J. (2010). Mercury In soils fund In the vicinity of selected coal mine waste disposal sites. Polityka Energetyczna. 13, 245–251.
  22. [22] Kluska M., Chrząścik I. & Szymalska M. (2007). Evaluation of Mercury content in water precipitation In the area of City Siedlce by isotachophoresis method. Oceanological and Hydrobiological Studies. Gdańsk. 34, 31–38.
  23. [23] Kopeć M. & Gondek K. (2009). Zawartość rtęci w roślinach górskiego użytku zielonego (Czarny Potok) po 40 latach zróżnicowanego nawożenia mineralnego. Inżynieria Ekologiczna. 21.
  24. [24] Leśniewska E., Szynkowska M.I. & Paryjczak T. (2009). Main Sources of Mercury In Human Organisms not Exposed Professionally. Rocznik Ochrona Środowiska. 11, 403–419.
  25. [25] Magulski R., Falkowska L. & Bełdowska M. (2007). Mercury transformations In the seawater In the presence of Cyclotella meneghiniana and Nodularia spumigena. Oceanological and Hydrobiological Studies. Gdańsk. 34, 69–82.
  26. [26] Marks R. & Bełdowska M. (2001). Air-sea exchange of mercury vapor over the Gulf of Gdansk and southern Baltic Sea. Journal of Marine Systems. 27, 315–324. http://dx.doi.org/10.1016/S0924-7963(00)00076-210.1016/S0924-7963(00)00076-2
  27. [27] Mason R.P., O’Donnell J. & Fitzgerald W.F. (1994). The biogeochemical cycling of mercury in the equatorial Pacific Ocean. Deep-Sea Res. 40, 1897–1924. 10.1016/0967-0637(93)90037-4
  28. [28] Michalska A. (2010). Analysis of mercury content in the environment in the Silesian Voievodeship. Journal of Ecology and Health. 14, 165–168.
  29. [29] Miklavicic V. (1999). Mercury In the Town if Idrija (Slovenia) after 500 years of Mining and Smelting. Environmental Science. Mercury Contaminated Sites. Heidelberg. 259–269.
  30. [30] Murawiec D., Gajecka A., Bełdowska M. & Falkowska L. (2007). Investigation on Mercury concentration levels In coastal and offshore Walters of the Gdańsk Basin. Oceanological and Hydrobiological Studies. Gdańsk. 34, 83–98.
  31. [31] Pacyna E.G., Pacyna J.M., Fudała J., Strzelecka-Jastrząb E., Hławiczka S. & Panasiuk D. (2006). Mercury emission from anthropogenic sources in Europe in 2000 and their scenarios until 2020. Science Total Environment. 370, 147–156. http://dx.doi.org/10.1016/j.scitotenv.2006.06.02310.1016/j.scitotenv.2006.06.023
  32. [32] Poissant L & Casimir A. (1998). Water -air and soil-air Exchange rate of Total gaseous mercury measured AT background sites. Atmospheric Environment. 32, 883–893. http://dx.doi.org/10.1016/S1352-2310(97)00132-510.1016/S1352-2310(97)00132-5
  33. [33] Probst J.L., Messaitfa A., Krempp G. & Behra P. (1999). Fluvial Tranpsorts of Mercury Pollution In the III River Basin (Northeastern France): Portioning Matter and Bottom Sediments. Mercury Contaminated Sites. Heidelberg. 501–520. 10.1007/978-3-662-03754-6_29
  34. [34] Pyta H., Rosik-Dulewska C. & Czaplicka M. (2009). Speciation of Ambient Mercury in the Upper Silesia Region, Poland. Water Air Soil Pollut. 197, 233–240. http://dx.doi.org/10.1007/s11270-008-9806-910.1007/s11270-008-9806-9
  35. [35] Rogalski L. & Warmiński K. (2007). Relationship between anthropogenic emission and wet deposition of mercury in european countries. Oceanological and Hydrobiological Studies. Gdansk. 34, 19–30
  36. [36] Scholtz M.T., Van Heyst B.J. & Schroeder W.H. (2003). Modeling of mercury emissions from background soils. Science of The Total Environment. 304, 195–207 http://dx.doi.org/10.1016/S0048-9697(02)00568-510.1016/S0048-9697(02)00568-5
  37. [37] Siudek P. (2011). Mercury in the atmosphere over the urbanized zone of the Gulf of Gdansk. Praca doktorska. Uniwersytet Gdański. Gdańsk Ustawa z dnia 31 stycznia 1980 r. o ochronie i kształtowaniu środowiska art. 3. pkt. 5a (Dz. U. Nr 49 z 1994r., poz. 196 z późniejszymi zmianami)
  38. [38] Wangberg I., Schmolke S., Schager P., Munthe J., Ebinghaus R. & Iverfeldt A. (2001). Estimates of air-sea exchange of mercury in the Baltic Sea. Atmospheric Environment. 35, 5477–5484. http://dx.doi.org/10.1016/S1352-2310(01)00246-110.1016/S1352-2310(01)00246-1
  39. [39] Wołkowicz W. (2010). Ocena wpływu migracji pestycydów chloroorganicznych z wybranych mogilników, zlokalizowanych w różnych warunkach geologicznych, na zanieczyszczenie osadów i wód podziemnych. Przegląd Geologiczny. Warszawa. 58(11), 1087–1097
  40. [40] Wołkowicz S. (2003). Rekultywacja terenów zdegradowanych — teoria i praktyka. PIG. Warszawa.
  41. [41] Wołkowicz S., Choromański D. & Wołkowicz W. (2003). Badanie wpływu przeterminowanych środków ochrony roślin (mogilników) na środowisko geologiczne (III etap). PIG. Warszawa. 1–15
DOI: https://doi.org/10.2478/s13545-013-0064-0 | Journal eISSN: 1897-3191 | Journal ISSN: 1730-413X
Language: English
Page range: 99 - 109
Published on: Apr 12, 2013
Published by: University of Gdańsk
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2013 Lucyna Falkowska, Agnieszka Witkowska, Magdalena Bełdowska, Anita Lewandowska, published by University of Gdańsk
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.