Have a personal or library account? Click to login
The dominant runoff processes on grassland versus bare soil hillslopes in a temperate environment - An experimental study Cover

The dominant runoff processes on grassland versus bare soil hillslopes in a temperate environment - An experimental study

Open Access
|Nov 2019

References

  1. Antonetti, M., Buss, R., Scherrer, S., Margreth, M., Zappa, M., 2016. Mapping dominant runoff processes: an evaluation of different approaches using similarity measures and synthetic runoff simulations. Hydrology and Earth System Sciences, 20, 7, 2929–2945.10.5194/hess-20-2929-2016
  2. Bachmair, S., Weiler, M., 2012. Hillslope characteristics as controls of subsurface flow variability. Hydrology and Earth System Sciences, 16, 10, 3699–3715.10.5194/hess-16-3699-2012
  3. Blidaru, S., 1965. Emploi des bassins représentatifs et des stations expérimentales a l’étude des phénomènes hydrologiques. Studies and reports in hydrology, IAHS, 66, 2, 107–115.
  4. Bronstert, A., Bárdossy, A., 2003. Uncertainty of runoff modelling at the hillslope scale due to temporal variations of rainfall intensity. Physics and Chemistry of the Earth, Parts A/B/C, 28, 6–7, 283–288.10.1016/S1474-7065(03)00039-1
  5. Ferreira, C.S.S., Keizer, J.J., Santos, L.M.B., Serpa, D., Silva, V., Cerqueira, M., Ferreira, A.J.D., Abrantes, N., 2018. Runoff, sediment and nutrient exports from a Mediterranean vineyard under integrated production: An experiment at plot scale. Agriculture, Ecosystems & Environment, 256, 184–193.10.1016/j.agee.2018.01.015
  6. Florea, N., Conea, A., Munteanu, I. (coord.), 1971. Soil Map Romania, sc. 1: 500,000. Inst. Geol. Bucureşti, Bucharest.
  7. Florea, N., Munteanu, I., (Eds.), 2012. Romanian System of Soil Taxonomy/Sistemul Român de Taxonomie a Solurilor (SRTS-2012). Publish House Sitech, Craiova.
  8. Ghestem, M., Sidle, R. C., Stokes, A., 2011. The influence of plant root systems on subsurface flow: implications for slope stability. BioScience, 61, 11, 869–879.10.1525/bio.2011.61.11.6
  9. Hümann, M., Müller, C., 2013. Improving the GIS-DRP Approach by Means of Delineating Runoff Characteristics with New Discharge Relevant Parameters. ISPRS International Journal of Geo-Information, 2, 1, 27–49.10.3390/ijgi2010027
  10. Jost, G., Schume, H., Hager, H., Markart, G., Kohl, B., 2012. A hillslope scale comparison of tree species influence on soil moisture dynamics and runoff processes during intense rainfall. Journal of Hydrology, 420, 112–124.10.1016/j.jhydrol.2011.11.057
  11. Kohler, M.A., Linsley, R.K., 1951. Predicting the runoff from storm rainfall (Vol. 30). US Department of Commerce, Weather Bureau. Washington, DC, 9 p.
  12. Leitinger, G., Tasser, E., Newesely, C., Obojes, N., Tappeiner, U., 2010. Seasonal dynamics of surface runoff in mountain grassland ecosystems differing in land use. Journal of Hydrology, 385, 1–4, 95–104.10.1016/j.jhydrol.2010.02.006
  13. Lichner, L., Eldridge, D.J., Schacht, K., Zhukova, N., Holko, L., Sir, M., Pecho, J., 2011. Grass cover influences hydrophysical parameters and heterogeneity of water flow in a sandy soil. Pedosphere, 21, 6, 719–729.10.1016/S1002-0160(11)60175-6
  14. Lobet, G., Couvreur, V., Meunier, F., Javaux, M., Draye, X., 2014. Plant water uptake in drying soils. Plant Physiology, 164, 1619–1627.10.1104/pp.113.233486398272824515834
  15. Maftei, C., Chevalier, P., Ciurea, C., Roşu, L., 2002. Considerations Concerning the Characteristics of Permeability of the Podzolic soil in Voineşti Catchment. Analele Universitatii “OVIDIUS” Constanta, Seria Constructii, I, 3–4, 525–530.
  16. Minea, G., Iliescu, M., Dedu, F., 2016. Temporal rainfall properties at events scale in the Curvature Subcarpathians (Romania). Forum Geografic, XV, Suppl. 2, 115–123. DOI:10.5775/fg.2016.10.5775/fg.2016
  17. Minea, G., Moroşanu, G.A., 2016. Micro-scale hydrological field experiments in Romania. Open Geosciences, 8, 1, 154–160.10.1515/geo-2016-0015
  18. Minea, G., Tudor, G., Stan F-I., Ioana-Toroimac, G., Zamfir, R., 2018. How can the grasslands under rainfall events modify water balance in drought conditions. Journal of Water and Land Development, 38, 53–65.10.2478/jwld-2018-0042
  19. Miţă, P., Mătreaţă, S., 2016. Representative Basins in Romania: Synthesis of Research Result. Didactica Publishing House, Bucharest, 36 p.
  20. Müller, C., Hellebrand, H., Seeger, M., Schobel, S., 2009. Identification and regionalization of dominant runoff processes-a GIS-based and a statistical approach. Hydrology and Earth System Sciences, 13, 6, 779–792.10.5194/hess-13-779-2009
  21. Naef, F., Scherrer, S., Weiler, M., 2002. A process based assessment of the potential to reduce flood runoff by land use change. Journal of Hydrology, 267, 1, 74–79.10.1016/S0022-1694(02)00141-5
  22. Peel, M.C., Finlayson, B.L., McMahon, T.A., 2007. Updated world map of the Köppen-Geiger climate classification. Hydrol. Earth Syst. Sci., 11, 5, 1633–1644. https://doi.org/10.5194/hess-11-1633-200710.5194/hess-11-1633-2007
  23. Ries, F., Schmidt, S., Sauter, M., Lange, J., 2017. Controls on runoff generation along a steep climatic gradient in the Eastern Mediterranean. Journal of Hydrology: Regional Studies, 9, 18–33.10.1016/j.ejrh.2016.11.001
  24. Rodrigo-Comino, J., Senciales, J. M., Sillero-Medina, J. A., Gyasi-Agyei, Y., Ruiz-Sinoga, J. D., & Ries, J. B. 2019. Analysis of Weather-Type-Induced Soil Erosion in Cultivated and Poorly Managed Abandoned Sloping Vineyards in the Axarquía Region (Málaga, Spain). Air, Soil and Water Research, 12, 1–-11.10.1177/1178622119839403
  25. Rodrigo-Comino, J., Wirtz, S., Brevik, E.C., Ruiz-Sinoga, J., Ries, J.B. 2017. Assessment of agri-spillways as a soil erosion protection measure in Mediterranean sloping vineyards. J. Mt. Sci. 14, 6,1009–1022.10.1007/s11629-016-4269-8
  26. Rodríguez-Caballero, E., Cantón, Y., Lazaro, R., Solé-Benet, A., 2014. Cross-scale interactions between surface components and rainfall properties. Non-linearities in the hydrological and erosive behavior of semiarid catchments. Journal of Hydrology, 517, 815–825.10.1016/j.jhydrol.2014.06.018
  27. Scherrer, S., Naef, F., 2003. A decision scheme to indicate dominant hydrological flow processes on temperate grassland. Hydrological processes, 17, 2, 391–401.10.1002/hyp.1131
  28. Scherrer, S., Naef, F., Faeh, A.O., Cordery, I., 2007. Formation of runoff at the hillslope scale during intense precipitation. Hydrology and Earth System Sciences Discussions, 11, 2, 907–922.10.5194/hess-11-907-2007
  29. Schmocker-Fackel, P., Naef, F., Scherrer, S., 2007. Identifying runoff processes on the plot and catchment scale. Hydrology and Earth System Sciences, 11, 2, 891–906.10.5194/hess-11-891-2007
  30. Stanciu, P., Zlate-Podani, I., 1987. A study of hydrological regimes in experimental basins in relation to cultivation practices. Water for the Future: Hydrology in Perspective (Proceedings of the Rome Symposium, April 1987). IAHS, 164,193–203.
  31. USDA-NRCS, 1999. Guide to Texture by Feel. https://www.nrcs.usda.gov/wps/portal/nrcs/detail/soils/edu/?cid=nrcs142p2_054311, Accessed on November 27, 2018.
  32. Weyman, D.R., 1973. Measurements of the downslope flow of water in a soil. Journal of Hydrology, 20, 3, 267–288.10.1016/0022-1694(73)90065-6
  33. Woolhiser, D.A., Goodrich, D.C., 1988. Effect of storm rainfall intensity patterns on surface runoff. Journal of Hydrology, 102, 1–4, 335–354.10.1016/0022-1694(88)90106-0
  34. Zaharia, L., Ioana-Toroimac, G., 2009. Erosion dynamics – precipitation relationship in the Carpathian’s Curvature Region (Romania). Geografia Fisica e Dinamica Quaternaria, 32, 95–10.
DOI: https://doi.org/10.2478/johh-2019-0018 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 297 - 304
Submitted on: May 23, 2018
Accepted on: Dec 19, 2018
Published on: Nov 15, 2019
Published by: Slovak Academy of Sciences, Institute of Hydrology; Institute of Hydrodynamics, Czech Academy of Sciences, Prague
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2019 Gabriel Minea, Gabriela Ioana-Toroimac, Gabriela Moroşanu, published by Slovak Academy of Sciences, Institute of Hydrology; Institute of Hydrodynamics, Czech Academy of Sciences, Prague
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.