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Hydrology of the Carpathian Basin: interactions of climatic drivers and hydrological processes on local and regional scales – HydroCarpath Research Cover

Hydrology of the Carpathian Basin: interactions of climatic drivers and hydrological processes on local and regional scales – HydroCarpath Research

Open Access
|May 2020

References

  1. Bachmair, S., Weiler, M., 2011. New dimensions of hillslope hydrology. In: Levia, D.F. (Ed.): Forest Hydrology and Biogeochemistry. Synthesis of Past Research and Future Directions. Ecological Studies, Vol. 2016. Springer, 455–482.10.1007/978-94-007-1363-5_23
  2. Banasik, K., Rutkowska, A., Kohnová, S., 2014. Retention and curve number variability in a small agricultural catchment: the probabilistic approach. Water, 6, 5, 1118–1133.10.3390/w6051118
  3. Band, L.E., McDonnell, J.J., Duncan, J.M., Barros, A., Bejan, A., Burt, T., Dietrich, W.E., Emanuel, R., Hwang, T., Katul, G., Kim, Y., McGlynn, B., Miles, B., Porporato, A., Scaife, C., Troch, P.A., 2014. Ecohydrological flow networks in the subsurface. Ecohydrology, 7, 4, 1073–1078.10.1002/eco.1525
  4. Bartlett, M.S., Parolari, A.J., McDonnell, J.J., Porporato, A., 2016. Beyond the SCS-CN method: A theoretical framework for spatially lumped rainfall-runoff response. Water Resour. Res., 52, 4608–4627.10.1002/2015WR018439
  5. Bathurst, J., Birkinshaw, S., Johnson, H., Kenny, A., Napier, A., Raven, S., Robinson, J., Stroud, R., 2018. Runoff, flood peaks and proportional response in a combined nested and paired forest plantation/peat grassland catchment. Journal of Hydrology, 564, 916–927.10.1016/j.jhydrol.2018.07.039
  6. Beven, K., German, P., 2013. Macropores and water flow in soils revisited. Water Resources Research, 49, 6, 3071–3092.10.1002/wrcr.20156
  7. Bierkens, M.F.P., 2015. Global hydrology 2015: state, trends, and directions. Water Resources Research, 51, 4923–4947.10.1002/2015WR017173
  8. Blöschl, G., Bierkens, M.F.P., Chambel, A., Cudennec, C., Destouni, G., et al., 2019. Twenty-three unsolved problems in hydrology (UPH) – a community perspective. Hydrological Sciences Journal – Journal des Sciences Hydrologiques, 64, 10, 1141–1158.
  9. Blöschl, G., Blaschke, A.P., Broer, M., Bucher, C., Carr, G., Chen, X., Eder, A., Exner-Kittridge, M., Farnleitner, A., Flores-Orozco, A., Haas, P., Hogan, P., Kazemi Amiri, A., Oismüller, M., Parajka, J., Silasari, R., Stadler, P., Strauss, P., Vreugdenhil, M., Wagner, W., Zessner, M., 2016. The Hydrological Open Air Laboratory (HOAL) in Petzenkirchen: a hypothesis-driven observatory. Hydrol. Earth Syst. Sci., 20, 1, 227–255.10.5194/hess-20-227-2016
  10. Brilly, M. (Ed.), 2010. Hydrological Processes of the Danube River Basin Perspectives from the Danubian Countries. Springer, 436 p. ISBN 978-90-481-3423-6
  11. Burt, C.M., Mutziger, A.J., Allen, R.G, Howell, T.A., 2005. Evaporation research: review and interpretation. J. Irrig. Drain. Eng., 131, 1, 37–58.10.1061/(ASCE)0733-9437(2005)131:1(37)
  12. Casper, M.C., Mohajerani, H., Hassler, S., Herdel, T., Blume, T., 2019. Finding behavioral parameterization for a 1-D water balance model by multi-criteria evaluation. J. Hydrol. Hydromech., 67, 3, 2019, 213–224.10.2478/johh-2019-0005
  13. Ceola, S., Arheimer, B., Baratti, E., Blöschl, G., Capell, R., Castellarin, A., Freer, J., Han, D., Hrachowitz, M., Hundecha, Y., Hutton, C., Lindström, G., Montanari, A., Nijzink, R., Parajka, J., Toth, E., Viglione, A., and Wagener, T., 2015. Virtual laboratories: new opportunities for collaborative water science. Hydrol. Earth Syst. Sci., 19, 2101–2117.10.5194/hess-19-2101-2015
  14. Chen, X., Parajka, J., Széles, B., Strauss, P., Blöschl., G., 2020. Controls on event runoff coefficients and recession coefficients for different runoff generation mechanisms identified by three regression methods. J. Hydrol. Hydromech., 68, 2, 155–169.10.2478/johh-2020-0008
  15. Csáfordi, P., Eredics, A., Gribovszki, Z., Kalicz, P., Koppán, A., Kucsara, M., Moricz, N., Rasztovits, E., Víg, P., 2012. Hidegvíz Valley Experimental Watershed. (Eds.): Gribovszki Z., Kalicz P. Nyugat-magyarországi Egyetem Kiadó, Sopron, 27 p. ISBN 978-963-334-080-6
  16. Csáki, P., Gyimóthy, K., Kalicz, P., Szolgay, J., Zagyvai-Kiss, K.A., Gribovszki, Z., 2020. Multi-model climatic water balance prediction in the Zala River Basin (Hungary) based on a modified Budyko framework. J. Hydrol. Hydromech., 68, 2, 200–210.10.2478/johh-2020-0016
  17. Fang, X., Cleveland, T., Garcia, A.C., Thompson, D., Malla, R., 2005. Literature Review on Timing Parameters for Hydrographs. Report 0-4696-1. Department of Civil Engineering College of Engineering at Lamar University, Beaumont, 82 p.
  18. Gaál, L., Szolgay, J., Kohnová, S., Parajka, J., Merz, R., Viglione, A., Blöschl, G., 2012. Flood timescales: Understanding the interplay of climate and catchment processes through comparative hydrology. Water Resources Research, 48, 4, 21.10.1029/2011WR011509
  19. Gribovszki, Z., 2015. Hungarian National Report on IAHS (2011-2014). Geomatikai Közlemények, 18, 1, 106–113.
  20. HC, 2020. The Hydrocarpath conference. http://hydrocarpath.nyme.hu/index.php/21952/?&L=4
  21. Hlaváčiková, H., Novák, V., Kostka, Z., Danko, M., Hlavčo, J., 2018. The influence of stony soil properties on water dynamics modeled by the HYDRUS model. J. Hydrol. Hydromech., 66, 181–188.10.1515/johh-2017-0052
  22. Hogan, P., Parajka, J., Heng, L., Strauss, P., Blöschl., G., 2020. Partitioning evapotranspiration using stable isotopes and Lagrangian dispersion analysis in a small agricultural catchment. J. Hydrol. Hydromech., 68, 2, 134–143. DOI: 10.2478/johh-2020-000910.2478/johh-2020-0009
  23. Holko, L., Sleziak, P., Danko, M., Bičárová, S., Pociask-Karteczka, J., 2020a. Analysis of changes in the hydrological cycle of a pristine mountain catchment. 1. Water balance components and snow cover. J. Hydrol. Hydromech., 68, 2, 180–191. DOI: 10.2478/johh-2020-001010.2478/johh-2020-0010
  24. Holko, L., Danko, M., Sleziak, P., 2020b. Analysis of changes in the hydrological cycle of a pristine mountain catchment. 2. Isotopic data, trend and attribution analyses. Hydrol. Hydromech., 68, 2, 192–199. DOI: 10.2478/johh-2020-0011.10.2478/johh-2020-0011
  25. Kohnová, S., Rutkowska, A., Banasik, K., Hlavčová, K., 2020. The L-moment based regional approach to curve numbers for Slovak and Polish Carpathian catchments. J. Hydrol. Hydromech., 68, 2, 170–179. DOI: 10.2478/johh-2020-000410.2478/johh-2020-0004
  26. Krajčí, P., Danko, M., Hlavčo, J., Kostka, Z., Holko, L., 2016. Experimental measurements for improved understanding and simulation of snowmelt events in the Western Tatra Mountains. J. Hydrol. Hydromech., 64, 4, 316–328.10.1515/johh-2016-0038
  27. Krysanova, V., Hattermann, F.F., 2017. Intercomparison of climate change impacts in 12 large river basins: an overview of methods and summary of results. Climatic Change, 141, 3, 363–379.10.1007/s10584-017-1919-y
  28. Kundzewicz, Z.W., Robson, A.J., 2004. Change detection in hydrological records—a review of the methodology. Hydrological Sciences Journal, 49, 1, 7–19.10.1623/hysj.49.1.7.53993
  29. Longman, J., Veres, D., Ersek, V., Haliuc, A., Wennrich, V., 2019. Runoff events and related rainfall variability in the Southern Carpathians during the last 2000 years. Scientific Reports, 9, 1, 5334.10.1038/s41598-019-41855-1
  30. McCutcheon, S.C., Tedela, N.H., Adams, M.B., Swank, W., Campbell, J.L., Hawkins, R.H., Dye, C.R., 2006. Rainfallrunoff relationships for selected eastern U.S. forested mountain watersheds: Testing of the curve number method for flood analysis. Report prepared for the West Virginia Division of Forestry, Charleston, West Virginia.
  31. Merz, B., Vorogushyn, S., Uhlemann, S., Delgado, J., Hundecha, Y., 2012. HESS Opinions “More efforts and scientific rigour are needed to attribute trends in flood time series”. Hydrol. Earth Syst. Sci., 16, 1379–1387.10.5194/hess-16-1379-2012
  32. Montanari, A., Bahr, J., Bloeschl, G., Cai, X., Mackay, D.S., Michalak, A.M., Rajaram, H., Sander, G., 2015. Fifty years of Water Resources Research: Legacy and perspectives for the science of hydrology. Water Resour. Res., 51, 6797–6803.10.1002/2015WR017998
  33. Mujtaba, B., Hlaváčiková, H., Danko, M., de Lima, J.L.M.P., Holko., L., 2020. The role of stony soils in hillslope and catchment runoff formation. J. Hydrol. Hydromech., 68, 2, 144–154. DOI: 10.2478/johh-2020-001210.2478/johh-2020-0012
  34. Ninov, P., Bojilova, E. (Eds.), 2017. XXVII Conference of Danubian Countries on the hydrological forecasting and hydrological bases of water management. Book of proceedings. Golden Sands, Bulgaria, 624 p. ISBN 978-954-90537-2-2
  35. Olsson, J., Arheimer, B., Borris, M., Donnelly, C., Foster, K., Nikulin, G., Persson, M., Perttu, A-M., Uvo, C.B., Viklander, M., Yang, W., 2016. Hydrological climate change impact assessment at small and large scales: key messages from recent progress in Sweden. Climate, 4, 3, 39, 1–24.10.3390/cli4030039
  36. Pekárová, P., Miklánek, P., Halmová, D., Onderka, M., Pekár, J., Kučárová, K., Liová, S., Škoda, P., 2011. Long-term trend and multi-annual variability of water temperature in the pristine Bela River basin (Slovakia). Journal of Hydrology, 400, 3, 333–340.10.1016/j.jhydrol.2011.01.048
  37. Prohaska, S., Brilly, M., Kryzanovski, A., 2020. Cooperation of hydrologists from the Danube River Basin. HESS Discussions, 10 p. https://doi.org/10.5194/hess-2020-6610.5194/hess-2020-66
  38. Rogger, M., Agnoletti, M., Alaoui, A., Bathurst, J.C., Bodner, G., Borga, M., Chaplot, V., Gallart, F., Glatzel, G., Hall, J., Holden, J., Holko, L., Horn, R., Kiss, A., Kohnová, S., Leitinger, G., Lennartz, B., Parajka, J., Perdigão, R., Peth, S., Plavcová, L., Quinton, J.N., Robinson, M., Salinas, J.L., Santoro, A., Szolgay, J., Tron, S., van den Akker, J.J.H., Viglione, A., Blöschl, G., 2017. Land use change impacts on floods at the catchment scale: Challenges and opportunities for future research. Water Resour. Res., 53, 5209–5219.10.1002/2017WR020723557548528919651
  39. Rončák, P., Hlavčová, K., Látková, T., 2016. Estimation of the effect of changes in forest associations on runoff processes in basins: Case study in the Hron and Topľa River Basins. Slovak Journal of Civil Engineering, 24, 3, 1–7.10.1515/sjce-2016-0011
  40. Rutkowska, A., Kohnová, S., Banasik, K., Szolgay, J., Karabová, B., 2015. Probabilistic properties of a curve number: a case study for small Polish and Slovak Carpathian Basins. J. Mt. Sci., 12, 3, 533–548.10.1007/s11629-014-3123-0
  41. Scherrer, S., Naef, F., Faeh, A.O., Cordery, I., 2007. Formation of runoff at the hillslope scale during intense precipitation. Hydrol. Earth Syst. Sci., 11, 907–922.10.5194/hess-11-907-2007
  42. Silasari, R., Parajka, J., Ressl, C., Strauss, P., Blöschl, G., 2017. Potential of time-lapse photography for identifying saturation area dynamics on agricultural hillslopes. Hydrological Processes, 31, 3610–3627. DOI: 10.1002/hyp.1127210.1002/hyp.11272
  43. Šimůnek, J., Šejna, M., van Genuchten, M.T., 2018. New features of version 3 of the HYDRUS (2D/3D) computer software package, J. Hydrol. Hydromech., 66, 2, 133–142. DOI: 10.1515/johh-2017-005010.1515/johh-2017-0050
  44. Smith, R., Redding, T., 2012. Cumulative effects assessment: runoff generation in snowmelt dominated montane and boreal plain catchments. Watershed Management Bulletin, 15, 24–34.
  45. Soulis, K.X., Valiantzas, J.D., Dercas, N., Londra, P.A., 2009. Investigtion of the direct runoff generation mechanism for the analysis of the SCS-CN method applicability to a partial area experimental watershed. Hydrol. Earth Syst. Sci., 13, 605–615.10.5194/hess-13-605-2009
  46. Stagl, J.C., Hattermann, F.F., 2015. Impacts of climate change on the hydrological regime of the Danube River and its tributaries using an ensemble of climate scenarios. Water, 7, 6139–6172.10.3390/w7116139
  47. Széles, B., Broer, M., Parajka, J., Hogan, P., Eder, A., Strauss, P., Blöschl, G., 2018. Separation of scales in transpiration effects on low flows: A spatial analysis in the Hydrological Open Air Laboratory. Water Resources Research, 54, 9, 6168–6188.10.1029/2017WR022037622101530449909
  48. Tesař, M., Šír, M., Syrovátka, O., Pražák, J., Lichner, Ľ., Kubík, F., 2001. Soil water regime in head water regions - observation, assessment and modelling. J. Hydrol. Hydromech., 49, 6, 355–406.
  49. Tromp-van Meerveld, H.J., McDonnell, J.J., 2006. Threshold relations in subsurface stormflow: 2. The fill and spill hypothesis. Water Resour Res., 42, W02411.10.1029/2004WR003800
  50. Viglione, A., Chirico, G.B, Komma, J., Woods, R., Borga, M., Blöschl, G., 2010. Quantifying space-time dynamics of flood event types. Journal of Hydrology, 394, 1–2, 213–229.10.1016/j.jhydrol.2010.05.041
  51. Viglione, A., Rogger, M., Pirkl, H., Parajka, J., Blöschl, G., 2018. Conceptual model building inspired by field-mapped runoff generation mechanisms. J. Hydrol. Hydromech., 66, 3, 303–315. DOI: 10.2478/johh-2018-001010.2478/johh-2018-0010
  52. Wahren, A., Feger, K.H., Schwärzel, K., Münch, A., 2009. Landuse effects on flood generation – considering soil hydraulic measurements in modelling. Advances in Geosciences, 7, 1–9.10.5194/adgeo-21-99-2009
  53. Wang, K., Dickinson, R.E., 2012. A review of global terrestrial evapotranspiration: Observation, modeling, climatology, and climatic variability. Rev. Geophys., 50, RG2005, 54 p.10.1029/2011RG000373
DOI: https://doi.org/10.2478/johh-2020-0017 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 128 - 133
Published on: May 26, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2020 Ján Szolgay, Günter Blöschl, Zoltán Gribovszki, Juraj Parajka, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.