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Równowaga hydrodynamiczna ważnym parametrem kształtującym stan ekologiczny cieków karpackich

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Warianty tytułu
EN
Hydrodynamical Balance as Important Parameter Influencing the Ecological Status of Carpathian Rivers
Języki publikacji
PL
Abstrakty
EN
According to the Water Framework Directive human activities should lead to an improvement or at least stabilizing of water ecosystems. Due to the adaptive nature of living species, reference conditions specified under the WFD for mountain river should be tested after reaching of proper hydromorphological parameters. The hydrodynamical balance of mountain river channel is reflected by it's plan view as well as by vertical and cross-sectional layouts. Mountain river in natural conditions produce a clearly defined riffle and pool system and can create a variety of channels with bars. Fluvial processes occurring in mountain rivers differ much from those that occur in lowland rivers. Beds of mountain rivers and streams, due to the water flow in high bed relative roughness conditions, are sensitive to changes in the bed material composition, size and shape. In these circumstances, bedforms are not created. While low and medium flows, there is no sediment transport, and only minor grain hide, sorting and armoring processes form the top of the bed. Granulometric curve changes depend on variations in several parameters. During the process of creating or removing the armored layer, the variation of fractions describing bed stability and water flow conditions exist. In a changing regime of watercourses functioning with the rough bottom, the standard deviation of the curve correctly reflects the bed material sorting processes. Armored bottom exists for it's values less than 1.6, and in the natural conditions the value does not fall below 1.3. In this case, fine material is almost completely removed from the bottom of the cover. Below the reaches of river sources, which are the steepest sections of mountain streams, riverbeds mostly achieve hydrodynamic balance and this is the optimal condition for the development of the aquatic ecosystem. When the incised channel, with armored bottom in alluvial river is found, it often shows a limited supply of bed material. Many factors can affect the change of the river channel so the stable morphological state occurs after some time, and after many oscillations around the optimal condition. It is a period of a few to tens of years. In any case, one can determine the state and intensity of fluvial processes. This paper presents a proposal for the implementation of the hydrodynamic balance to assess their ecological status as one of the first and basic. The assessment of the alluvial rivers hydrodynamic balance is shown on the example of the Skawa river (section above the mouth of Bystrzanka stream). Hydrodynamic balance of the channel was based on the analysis of interdependencies between riverbed bandwidth, the channel lateral and vertical layout and bed stability for the characteristic flows of the water: (Q75%, Q50% Q25%, Q10% and Q1%, bankfull an dominant flows). Bed stability analysis presented in the paper was performed using the computer program ARMOUR. Calculations were performed by comparing the critical Shields stresses characterizing all fractions of bed material to the bed shear stresses of the flowing water. On the basis of analysis of the riverbed in this section it was classified as natural.
Rocznik
Strony
2591--2610
Opis fizyczny
Bibliogr. 27 poz., tab., rys.
Twórcy
  • Uniwersytet Rolniczy, Kraków
autor
  • Uniwersytet Rolniczy, Kraków
autor
  • Instytut Meteorologii i Gospodarki Wodnej
autor
  • Instytut Meteorologii i Gospodarki Wodnej
Bibliografia
  • 1. Bartnik W.: Ocena zrównoważonego stanu środowiska rzek i potoków górskich. referat wygłoszony w ramach Szkoły Gospodarki Wodnej, Skawina, 2008.
  • 2. Bartnik W.: Ocena warunków równowagi hydrodynamicznej potoków górskich. Konferencja Naukowo-Techniczna „Bliskie naturze kształtowanie rzek i potoków”, Zakopane, 43–51 (1998).
  • 3. Bartnik W.: Hydraulika potoków i rzek górskich z dnem ruchomym – początek ruchu rumowiska wleczonego. Zeszyty Naukowe Akademii Rolniczej w Krakowie, nr 171, ss. 122 (1992).
  • 4. Bartnik W., Florek J.: Ocena hydrodynamiczna stabilności dna na przykładzie rzek i potoków Podkarpacia. Konferencja Naukowa nt: Typologia i warunki referencyjne wód powierzchniowych. Bukowina Tatrzańska. Wyd. IMGW w Warszawie, 2005.
  • 5. Bartnik W., Książek L.: Regulacja rzek i potoków górskich w warunkach równowagi hydrodynamicznej, Infrastruktura i Ekologia Terenów Wiejskich, Komisja Technicznej Infrastruktury Wsi, Nr 4/2/2007, Polska Akademia Nauk, Oddział w Krakowie, 15–26 (2007).
  • 6. Bartnik W., Majewski W., Łapuszek M., Ratomski J.: Ocena równowagi hydrodynamicznej Dolnego Dunajca w warunkach pracy Ele¬ktrowni wodnych, Infrastruktura i Ekologia Terenów Wiejskich, Komisja Technicznej Infrastruktury Wsi, Nr 4/1/2007, Polska Akademia Nauk, Oddział w Krakowie, 21–37 (2007).
  • 7. Bartnik W., Strużyński A.: Estimation of hydraulic parameters of armored layer forming in mountain rivers and streams, Advances in Hydro-Science and Engineering, ICHE and Warsaw University of Technology, wydanie CD-ROM, 2002.
  • 8. Bartnik W, Strużyński A.: Determining hydrodynamic balance in Mountain stream floods, 3rd International Symposium on Ecohydraulics, IAHR and Utah State Unversity, wydanie na CD_ROM, Salt Lake City, 1999.
  • 9. Bray D.I.: Flow resistance in gravel-bed rivers. In: R.D. Hey, J.C. Bathurst and C.R. Thorne (Editors), Gravel-Bed Rivers: Fluvial Processes, Engineering and Management. Wiley, New York, 109–137 (2002).
  • 10. Elkins E.M., Pasternack G.B., Merz J.E.: Use of slope creation for rehabilitating incised, regulated, gravel bed rivers, Water Resour. Res., 43, W05432, doi:10.1029/2006WR005159, 2007.
  • 11. Fuller I.: River and channel morphology. Technical Report prepared for Horizons Regional Council Measuring and monitoring channel morphology Geography Programme, School of People, Environment & Planning Report 2007/EXT/773, Massey University, p. 22 (2007).
  • 12. Gessler J.: Self stabilizing tendencies of alluvial channels. J. Waterways and Harbors Division, 235–249 (1970).
  • 13. Gorczyca E., Krzemień K., Łyp M.: Contemporary trends in the Białka River channel development in the Western Carpathians, Geographia Polo¬nica, 84, Speciall Issue Part 2, 39–53 (2011).
  • 14. Korpak J., Krzemień K., Radecki-Pawlik A.: Wpływ czynników antropogenicznych na zmiany koryt cieków karpackich, Infrastruktura i Ekologia Obszarów wiejskich, Nr 4, PAN, Kraków, p. 88 (2008).
  • 15. Kulesza K., Bartnik W., Gorczyca E., Krzemień K., Strużyński A.: Ocena zrównoważonego stanu rzek i potoków górskich w oparciu o naturalne warunki morfologiczne. IMGW, maszynopis, 2012.
  • 16. Lambor J.: Hydrologia inżynierska, Arkady, Warszawa, 1971.
  • 17. Lisle T.E.: A sorting mechanism for a riffle-pool sequence: summary. Geological Society of America Bulletin 90, 616–617 (1979).
  • 18. Lisle T.E., Church M.: Sediment transport-storage relations for degrading, gravel bed channels, Water Resour. Res., 38(11), 1219 (2002).
  • 19. Lisle T.E., Smith B.: Dynamic transport capacity in gravel-bed river systems. [in] T. Araya, Kuroki, M., Marutani, T., editor. International Workshop for Source to Sink Sedimentary Dynamics in Catchment Scale. Organizing Committee of the International Workshop for Sedimentary Dynamics, 2003, Sapporo, Japan, 187–206 (2003).
  • 20. Radecki-Pawlik A.: Hydromorfologia rzek i potoków górskich, Wydawnictwo Uniwersytetu Rolniczego w Krakowie, Kraków 2011, p. 288 (2011).
  • 21. Sentürk F.: Sediment transport technology, Fort Collins, Colorado, 1977.
  • 22. Strutyński M., Strużyński A., Kulesza K.: The Influence of Large Roughness Elements on Natural Morphological Changes in a Mountain River Bed, P. Rowinski (ed.), Experimental and Computational Solutions of Hydraulic Problems, GeoPlanet: Earth and Planetary Sciences, Springer-Verlag Berlin Heidelberg, 2013, w druku.
  • 23. Strużyński A., Kulesza K., Strutyński M.: Bed Stability as a Parameter Describing the Hydromorphological Balance of a Mountain River, P. Rowinski (ed.), Experimental and Computational Solutions of Hydraulic Problems, GeoPlanet: Earth and Planetary Sciences, 2013, w druku.
  • 24. Thompson D.M., Wohl E.E., Jarrett R.D.: Velocity reversals and sediment sorting in pools and riffles controlled by channel constrictions. Geomorphology 27, Elsevier Science B.V. 229–241 (1999).
  • 25. Ven Te Chow, Maidment, D.K., Mays, LW.: Applied of Hydrology. McGRAW-HILL BOOK COMPANY, New York, 1988.
  • 26. Wang F.Y.: Bed load transport in open channels, Proc. of IAHR, Baden-Baden, 1977.
  • 27. Wyżga B., Radecki-Pawlik A.: Jak zmniejszyć zagrożenie i ryzyko powodziowe w dorzeczu górnej Wisły? Gospodarka Wodna, 10/2011, 414–421 (2011).
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-e2a6b61c-de45-4127-b0e1-fe7502158bc4
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