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The Role of Subaquatic Springs in the Formation of Flow, Temperature and Chemical Composition of River Water in the Reserve

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
A study of the effect of subaquatic discharge of karst groundwater sources on the composition of the Vishera River, the largest tributary of the Kama River, was carried out. The study was carried out on the territory of the State Nature Reserve "Vishersky" and included the determination of the flow rate, temperature as well as chemical composition of natural waters. Six zones of karst groundwater discharge and their influence on the water regime of the Vishera river were studied in detail. It was shown that subaquatic sources in the places of their discharge, forming up to 36% of the river flow, significantly affect the temperature regime. A significant part of dissolved substances, primarily calcium ions and hydrocarbonate ions, as well as some trace elements (Li, Sr, V, Cr) enter the Vishery river with karst waters. The results of the study show that monitoring the composition and properties of groundwater discharged covertly in the river channel is an important part of the monitoring of water bodies of both protected and developed areas.
Rocznik
Strony
39--48
Opis fizyczny
Bibliogr. 21 poz., rys., tab.
Twórcy
  • Perm State University, Bukireva St. 15, 614990 Perm, Russia
  • Perm State University, Bukireva St. 15, 614990 Perm, Russia
autor
  • Perm State University, Bukireva St. 15, 614990 Perm, Russia
  • Perm State University, Bukireva St. 15, 614990 Perm, Russia
Bibliografia
  • 1. Afgane R., Benjelloun F., Lahrach A. , Daide F. 2021. Comparative Study of the Physico-Chemical and Metallic Quality of Waters and Sediments in the Larbaa Basin (Morocco) in the Dry and Wet Period. J. Ecol. Eng., 22(8), 92–102. DOI: 10.12911/22998993/140261
  • 2. Blinov S.M., Khmurchik V.T., Abdullin S.R., Shchukova I.V. 2008. The complex study of subaqual karsyic water sources of “Visherskiy” Reserve. Bulletin of Perm University. Geology, 10, 111–123.
  • 3. Blinov S.M., Lavrov I.A., Tyurina I.M. 2004. Study of subaquatic karst springs. Proc. Karst Science - XXI Century: Proceedings of the International Symposium on Karst, 176–178.
  • 4. Blinov S.M., Shchukova I.V., Baturin E.N. 2010. Subaqueous karst springs of the Permian Urals: basics of classification. Natural and technical sciences, 6(50), 287–291.
  • 5. Cantú Medina F.G., Ventura-Houle R., Heyer Rodríguez L., et al. 2021. Water–rock interactions in a karst aquifer located in southwestern Tamaulipas, Mexico. Carbonates and Evaporites, 36(3), 59. DOI: 10.1007/s13146-021-00723-8
  • 6. Davybida L., Kasiyanchuk D., Shtohryn L., et al. 2018. Hydrogeological Conditions and Natural Factors Forming the Regime of Groundwater Levels in the Ivano-Frankivsk Region (Ukraine). J. Ecol. Eng., 19(6), 34–44. DOI: 10.12911/22998993/91883
  • 7. Dublyansky V.N., Dublyanskaya G.N., Karstology. Perm State University, Perm.
  • 8. Gonneea M.E., Charette Matthew A., Liu Q., et al. 2014. Trace element geochemistry of groundwater in a karst subterranean estuary (Yucatan Peninsula, Mexico). Geochimica et Cosmochimica Acta, 132, 31–49. DOI: 10.1016/j.gca.2014.01.037
  • 9. Maksimovich G.A. Fundamentals of Karstology. 1963. Perm State University, Perm.
  • 10. Mustafa O., Tichomirowa M., Kummer N.A., et al. 2016. Assessment of water-rock interaction processes in the Karst Springs of Makook Anticline (Kurdistan Region, Iraq) using Sr-isotopes, rare earth, and trace elements. Arabian Journal of Geosciences, 9, 368. DOI: 10.1007/s12517-016-2344-7
  • 11. Naoura J., El Kati I., Benaabidate L. 2021. Assessment of Ras El Ma Karst Spring Features by Structural and Functional Approaches at the Region of Taza, Morocco. J. Ecol. Eng., 22(9), 32–47. DOI: 10.12911/22998993/141477
  • 12. Pratama A.D., Dwiputra D.S., Nurkholis A., et al. 2021. Factors Affecting Hydrochemistry of Karst Springs and their Relationship to Aquifer Development. Environmental Processes, 8, 1379–1413. DOI: 10.1007/s40710-021-00547-7.
  • 13. Savatier M., Rocha C. 2021. Rethinking tracer-based (Ra, Rn, salinity) approaches to estimate point-source submarine groundwater discharge (SGD) into coastal systems. Journal of Hydrology, 598. DOI: 10.1016/j.jhydrol.2021.126247
  • 14. Schubert M., Scholten J., Schmidt A., Comanducci J.F., Pham M.K., Mallast U., Knoeller K. 2014. Submarine Groundwater Discharge at a Single Spot Location: Evaluation of Different Detection Approaches. Water, 6(3), 584–601. DOI: 10.3390/w6030584
  • 15. Sklyarov E.V., Gladkochub D.P., Donskaya T.V. 2001. Interpretation of geochemical data. Intermet-engineering, Moscow.
  • 16. Stevanović Z., Pekaš Ž., Stevanović A.M., Eftimi R., Radulović M. 2022. Springs as Essential Water Sources for Dependent Ecosystems in Karst. In book: Small Water Bodies of the Western Balkans. Springer Water, 1–20. DOI: 10.1007/978-3-030-86478-1_1.
  • 17. Stevanović Z. 2019. Karst waters in potable water supply: a global scale overview. Environmental Earth Sciences, 78, 662. DOI: 10.1007/ s12665-019-8670-9.
  • 18. Tamborski J., van Beek P., Conan P., Pujo-Pay M., et al. 2020. Submarine karstic springs as a source of nutrients and bioactive trace metals for the oligotrophic Northwest Mediterranean Sea. Science of The Total Environment, 732, 139106. DOI: 10.1016/j.scitotenv.2020.139106
  • 19. Vaganov S.S. 2017. Experience in search and investigation of groundwater sources of karst massifs discharging from the bottom of rivers and lakes. Natural and technical sciences, 11(113), 64–65.
  • 20. Wang X., Su K., Du J. et al. 2021. Estimating submarine groundwater discharge at a subtropical river estuary along the Beibu Gulf, China. Acta Oceanologica Sinica, 40, 13–22. DOI: 10.1007/s13131-021-1862-7.
  • 21. Wirth Stefanie B., Bouffard Damien, Zopfi Jakob. 2020. Lacustrine Groundwater Discharge Through Giant Pockmarks (Lake Neuchatel, Switzerland). Front. Water. DOI: 10.3389/frwa.2020.00013.
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-1c513eeb-73b4-4013-8915-3a882e457f1d
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