Isotope composition of ground and surface waters of the Lammin-Suo swamp massif (Leningrad region)
Abstract
Lammin-Suo swamp area is a State hydrological reserve, as well as a training ground of the State Hydrological Institute. The isotopic composition of groundwater and surface water has been measured for the first time. Two different types of water have been identified based on results of δ18О and δ2Н values. The microcomponent composition of the water has been analyzed during further research. The resulting values confirm the earlier assumption of the contribution of additional swamp supply source. Moreover, these results indicate the sorbent properties of peat deposits.
About the Authors
T. A. StroganovaRussian Federation
Ph.D. Student
Eh. M. Prasolov
Russian Federation
Doctor of Geological and Mineralogical Sciences, Leading Scientist, Center for Isotopic Research
References
1. Vojlokova (Stroganova) T. A., Konosavskij P. K., Prasolov Eh. M. Features of the isotopic composition of the waters of the swamp landfill Lammin-Suo (Zelenogorsk). Proceedings of the IV Intern. scientific practical conf. of young scientists and specialists in memory of academician A. P. Karpinsky (February
2. –20, 2015, St. Petersburg, VSEGEI). St. Petersburg: VSEGEI. 2015. Pp. 424–426. (In Russian).
3. Kalyuzhnyj I. L., Levandovskaya L. Ya. Hydrochemical mode and chemical composition of oligotrophic marsh waters. Proceedings of the State Hydrology Institute. 1974. Iss. 222, pp. 99–118. (In Russian).
4. Materialy nablyudeniy bolotnykh stantsiy za 1990 g.: Yezhegodnik. Vyp. 1 [Materials of observations of swamp stations for 1990: Yearbook. Iss. 1]. St. Petersburg. 1993.
5. Mezhibor A. M. Radioactive elements in high-moor peats of the Tomsk region. Radioactivity and radioactive elements in the human environment: Proceedings of the IV Intern. conf. (Tomsk, June 4–8, 2013). Tomsk: Izd-vo Tomskogo politekhnicheskogo un-ta. 2013. Pp. 358–361. (In Russian).
6. Hyofs J. Geohimiya stabil’nyh izotopov [Geochemistry of stable isotopes]. Moscow: Mir. 1983. 198 p.
7. Chandrasekhar, K., Chary, S. N., Kamala, C. T. & Aparna, V. 2003: Determination of trace metals in seawater by ICP-MS after matrix separation. Acta Chim. Slov. 50. 409–418.
8. Cheung, K., Sanei, H. 2009: Produced fluids and shallow groundwater in coalbed methane (CBM) producing regions of Alberta, Canada: Trace element and rare earth element geochemistry. International Journal of Coal Geology. 77. 338–349.
9. Еzoe, M. 2004: Distributions of dissolved and acid-dissolvable bioactive trace metals. Geochemical Journal. 38. 550.
10. Gammons, C. H., Wood, S. A., Pedrozo, F., Varekamp, J. C., Nelson, B. J., Shope C. L. et al. 2005: Hydrogeochemistry and rare earth element behavior in a volcanically acidified watershed in Patagonia, Argentina. Chemical Geology. 222 (3–4). 249–267.
11. Johannesson, K. H., Stetzenbach, K. J., Hodge, V. F., Kreamer, D. K., Zhou, X. 1997: Delineation of ground-water flow systems in the southern great basin using aqueous rare earth element distribution. Ground Water. 35. 807–819.
12. Smedley P. L. 1991: The geochemistry of rare earth elements in groundwater from the Carnmenellis area, southwest England. Geochim Cosmochim Acta. 55. 2767–2779.
Review
For citations:
Stroganova T.A., Prasolov E.M. Isotope composition of ground and surface waters of the Lammin-Suo swamp massif (Leningrad region). Regional Geology and Metallogeny. 2019;(77):20–26. (In Russ.)