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Hydrological processes in small catchments of mountain headwater lakes: The Tatra Mountains

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Abstract

This study evaluates runoff and different methods for the estimation of water balance and runoff genesis in four small alpine catchments, which lie outside the standard network of hydrological and climate networks. These test catchments, whose size ranges between 2.3 and 110 ha, are located above the timberline at elevations between 1,784 and 2,380 m. Their land surfaces consist of lakes, rock formations, debris deposits, and alpine meadows. Hydrological data were collected for the water year 2001. The catchments were instrumented by three automatic weather stations recording global and net solar radiation, air temperature, humidity, precipitation, and soil temperature. Lake water levels were registered with staff gauges and runoff evaluated from water storage calculations. Runoff genesis was investigated by means of chemical tracers (Rhodamine WT and Lithium chloride). Hydrological process estimations were made using standard methods including: the input of precipitation and snowmelt, both potential and actual evaporation, which was estimated by the approaches of Hamon, Priestley-Taylor, Penman and Grindley, and runoff calculated from the lake storage, were compared with results of the conceptual hydrological Brook90 model. The empirical results show that hydrological processes are governed by the temperature-dependent regime of high mountain snowmelt. However, the major differences in water yield and runoff genesis between watersheds were due to differences in the morphologies of the lakes and their basins, the soilvegetation complex, and runoff routing. Evaluating approaches to estimation, Penman’s combination of both aerodynamic and energy balance method provides the best fit to observed data with observed evapotranspiration being 78 to 99% of the potential calculated. The deterministic Brook90 model is effective for precipitation-runoff genesis studies in small headwater catchments. In the L’adové pleso basin predicted and observed water yield show close correlation. The annual sum of actual evapotranspiration calculated by BROOK90 (352 mm) corresponds closely to that estimated by the approach of Penman (386 mm).

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References

  • Burroughs, W.J. 1991. Watching the Worlds Weather. Cambridge University Press, 196 pp.

  • Chow, V.T., Maidment, D.R. & Mays, L.W. 1988. Applied Hydrology. McGraw-Hill, New York, 571 pp.

    Google Scholar 

  • Dub, O. & Němec, J. 1969. Hydrologie [Hydrology]. SNTL, Praha, 379 pp.

    Google Scholar 

  • Federer, C.A. 1992. Brook 90: a simulation model for evaporation, soil water and streamflow. USDA Forest Service, Durham, New Hampshire, 106 pp.

    Google Scholar 

  • Fott, J., Pražáková, M., Stuchlík, E. & Stuchlíková, Z. 1994. Acidification of lakes in Šumava (Bohemia) and in the High Tatra Mountains (Slovakia). Hydrobiologia 247: 37–47.

    Article  Google Scholar 

  • Gonzales, J. 2000. Monitoring cloud interception in a tropical montane cloud forest of the south-western Colombian Ands. Advances in Environmental Monitoring and Modelling 1(1): 97–117.

    Google Scholar 

  • Haigh, M.J. & Křeček, J. 2000. Environmental reconstruction in headwater areas. Kluwer, Dordrecht, 243 pp.

    Google Scholar 

  • Hall, R.L., Calder, I.R., Rosier, P.T.W., Swaminath, M.H. & Mumtaz, J. 1992. Measurements and modeling of interception loss from Eucalyptus plantation in Southern India, pp. 270–289. In: Calder, I.R. et al. (eds) Growth and water use of forest plantations, John Wiley & Sons, Chichester.

    Google Scholar 

  • Henderson-Sellers, A. & Robinson, P.J. 1989. Contemporary climatology. Longman House, Harlow, 439 pp.

    Google Scholar 

  • HMU 1962. Atlas podnebí Československé republiky [Climate Atlas of Czechoslovakia]. Centre of Cartography, Prague, Czech Republic, 453 pp.

    Google Scholar 

  • HMU 1968. Hydrologické poměry Československé republiky [Hydrological conditions of Czechoslovakia]. Hydro-meteorological Institute (HMU), Prague, Czech Republic, Volumes I–III, 1276 pp.

    Google Scholar 

  • Kemel, M. 1972. Hydrologie [Hydrology]. Czech Technical University in Prague, Faculty of Civil Engineering, Prague, Czech Republic, 290 pp.

    Google Scholar 

  • Křeček, J. & Rusnok, J. 1993. Maharlu: hydrological model for mountain semiarid basins, pp. 234–241. In: Afrasiabian, A. & Farhoodi, G. (eds) Water resources in karst with special emphasis on arid and semi arid zones, Iranian Ministry of Energy, Shiraz, Iran.

    Google Scholar 

  • Lajczak, A. 1996. Hydrologia [Hydrology], pp. 169–196. In: Mirek, Z., Głowaciński, Z., Klimek, K. & Piekoš-Mirkowa H. (eds) Przyroda Tatrzańskiego Parku Narodowego [The nature in the High Tatras National Park], Zakopane-Kraków, Poland.

    Google Scholar 

  • Linsley, R.K., Kohler, M.A. & Paulhus, J.L.H. 1975. Hydrology for engineers. McGraw-Hill Kogakusha Ltd., Tokyo, 482 pp.

    Google Scholar 

  • Ljunggren, E. 2002. Water balance estimates and modelling hydrological processes in a small Alpine catchment: the High Tatra Mountains, Slovakia. MSc. Thesis, Czech Technical University in Prague, Faculty of Civil Engineering, Prague, 35 pp.

    Google Scholar 

  • Lopatová, E. 2003. Prostorová a časová distribuce množství a chemizmu atmosférické depozice v alpinském pásmu Vysokých Tater [Spatial distribution and seasonal change of amount and chemistry of atmospheric deposition in alpine zone of the High Tatra Mountains]. MSc. Thesis, Faculty of Science, Charles University in Prague, Czech Republic, 67 pp.

    Google Scholar 

  • Miklanek, P. & Meszaros, I. 1998. Modelling of potential evapotranspiration in mountainous areas taking into account the terrain shadowing, pp. 54–57. In: Tappeiner, U. (ed.) Hydrology, water resources and ecology of mountain areas, European Academy, Bolzano, Italy

    Google Scholar 

  • Shaw, E.M. 1991. Hydrology in practice. Chapman & Hall, London, 539 pp.

    Google Scholar 

  • Šporka, F., Livingstone, D.M., Stuchlík, E., Turek, J. & Galas, J. 2006. Water temperatures and ice cover in lakes of the Tatra Mountains. Biologia, Bratislava 61,Supl. 18: S77–S90.

    Google Scholar 

  • Tomlain, J. 1985. Mapping evapotranspiration on the territory of Slovakia for 1951–1980. Met. Bull. 38: 140–145.

    Google Scholar 

  • Turek, J. 2002. Hydrologický režim vysokohorských jezer na území Vysokých Tater [Hydrological regime of alpine lakes in the High Tatras]. MSc. Thesis, Faculty of Science, Charles University in Prague, Czech Republic, 80 pp.

    Google Scholar 

  • Vološčuk, I. (ed.) 1994. Tatranský národný park [The Tatra National Park]. Gradus, Martin, Slovak Republic, 551 pp.

    Google Scholar 

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Křeček, J., Turek, J., Ljungren, E. et al. Hydrological processes in small catchments of mountain headwater lakes: The Tatra Mountains. Biologia 61 (Suppl 18), S1–S10 (2006). https://doi.org/10.2478/s11756-006-0115-8

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