Have a personal or library account? Click to login
A calibration-free evapotranspiration mapping technique for spatially-distributed regional-scale hydrologic modeling Cover

A calibration-free evapotranspiration mapping technique for spatially-distributed regional-scale hydrologic modeling

By: Jozsef Szilagyi and  Akos Kovacs  
Open Access
|Jun 2011

References

  1. ALLEN R.G., TASUMI M., TREZZA R., 2007: Satellite-based energy balance for mapping evapotranspiration with internalized calibration (METRIC)-model. J. Irrig. Drainage Engng., 133, 4, 380-394.10.1061/(ASCE)0733-9437(2007)133:4(380)
  2. BALDOCCHI D.D., 2003: Assessing the eddy covariance technique for evaluating carbon dioxide exchange rates of ecosystems: past, present and future. Global Change Biol., 9, 1-14.10.1046/j.1365-2486.2003.00629.x
  3. BARCZA Z., KERN A., HASZPRA L., KLJUN N., 2009: Spatial representativeness of tall tower eddy covariance measurements using remote sensing and footprint analysis. Agric. Forest Meteor., 149, 795-807.10.1016/j.agrformet.2008.10.021
  4. BASTIAANSSEN W.G.M., MENENTI M., FEDDES R.A., HOLTSLAG A.A.M., 1998: A remote sensing surface energy balance algorithm for land (SEBAL): 1. Formulation. J. Hydrol., 212, 198-212.10.1016/S0022-1694(98)00253-4
  5. BOUCHET R.J., 1963: Evapotranspiration reelle, evapotranspiration potentielle, et production agricole. Annal. Agronom., 14, 543-824.
  6. BRUTSAERT W., PARLANGE M.B., 1998: Hydrologic cycle explains the evaporation paradox. Nature, 396, (6706), 30.10.1038/23845
  7. BRUTSAERT W., STRICKER H., 1979: An Advection-Aridity approach to estimate actual regional evapotranspiration. Water Resour. Res., 15, 443-449.10.1029/WR015i002p00443
  8. GUSEV Y., NOVÁK V., 2007: Soil water - main water resources for terrestrial ecosystems of the biosphere. J. Hydrol. Hydromech., 55, 1, 3-15.
  9. HLAVČOVÁ K., KALAŠ M., KOHNOVÁ S., SZOLGAY J., 2004.: Modelling potential evapotranspiration and runoff in monthly time step in the Hron River basin. (In Slovak.) (Modelovanie potenciálnej evapotranspirácie a odtoku v mesačnom kroku na povodí Hrona.) J. Hydrol. Hydromech., 52, 4, 255-266.
  10. HOBBINS M.T., RAMIREZ J.A., BROWN T.C., 2001a): The complementary relationship in estimation of regional evapotranspiration: An enhanced advection-aridity model. Water Resour. Res., 37, 5, 1389-1403.10.1029/2000WR900359
  11. HOBBINS M.T., RAMIREZ J.A., BROWN T.C., CLAESSENS L.H.J.M., 2001b): The complementary relationship in estimation of regional evapotranspiration: The complementary relationship areal evaporation and advection-aridity models. Water Resour. Res., 37, 5, 1367-1387.10.1029/2000WR900358
  12. KOVACS A., SZILAGYI J., 2009a): Estimating evaporation rates of shallow great lakes in Hungary, I. (In Hungarian.) Hidrol. Kozlony, 89, 2, 47-50.
  13. KOVACS A., SZILAGYI J., 2009b): Estimating evaporation rates of shallow great lakes in Hungary, II. (In Hungarian.) Hidrol. Kozlony, 89, 2, 51-56.
  14. MAJOR P., 1976: Groundwater balance investigations in flat lands. 2. Piezometer readings. (VITUKI report, in Hungarian), VITUKI, Budapest.
  15. MORTON F.I., 1983: Operational estimates of areal evapotranspiration and their significance to the science and practice of hydrology. J. Hydrol., 66, 1, 1-76.10.1016/0022-1694(83)90177-4
  16. MORTON F.I., RICARD F., FOGARASI S., 1985: Operational estimates of areal evapotranspiration and lake evaporation - Program WREVAP. National Hydrological Research Institute Paper #24, Ottawa, Ontario, Canada.
  17. NAGY Z., PINTER K., CZOBEL S., BALOGH J., HORVATH L., FOTI S., BARCZA Z., WEIDINGER T., CSINTALAN Z., DINH N.Q., GROSZ B., TUBA Z., 2007: The carbon budget of semi-arid grassland in a wet and a dry year in Hungary. Agric. Ecosyst. Environ. 121, 1-2, 21-29.10.1016/j.agee.2006.12.003
  18. NOVÁK V., 2001: Evapotranspiration from Crop Canopies and its Distribution over the Territory of Slovakia. Pollution and Water Resources, Columbia University Seminar Proceedings, Columbia University, 375-397.
  19. NOVÁK V., MATEJKA F., 2000: Vzťah medzi vlhkosťou, vlhkostným potenciálom pôdy a intenzitou evapotranspirácie: výsledky matematickeho modelovania. (In Slovak.) (Soil water content, soil water potential and evapotranspiration interrelations: results of mathematical modeling.) J. Hydrol. Hydromech., 48, 2, 125-141.
  20. PARAJKA J., SZOLGAY J., MÉSZÁROS I., KOSTKA Z., 2004: Grid-based mapping of the long-term mean annual potential and actual evapotranspiration in upper Hron River basin. J. Hydrol. Hydromech., 52, 4, 239-254.
  21. PENMAN H.L., 1948: Natural evaporation from open water, bare soil, and grass. Proc. Royal Soc. London, A193, 120-146.10.1098/rspa.1948.0037
  22. PINTER K., BARCZA Z., BALOGH J., CZOBEL S., CSINTALAN Z., TUBA Z., NAGY Z., 2008: Interannual variability of grasslands' carbon balance depends on soil type. Community Ecol., 9 (Suppl1), 43-48. doi: 10.1556/ComEc.9.2008.S.7.10.1556/ComEc.9.2008.S.7
  23. PRIESTLEY C.H.B., TAYLOR R.J., 1972: On the assessment of surface heat flux and evaporation using large-scale parameters. Month. Weather Rev., 100, 81-92.10.1175/1520-0493(1972)100<;0081:OTAOSH>2.3.CO;2
  24. STELCZER K., 2000: A vizkeszletgazdalkodas hidrologiai alapjai. (Hydological bases of water resources management. (In Hungarian.) ELTE Eotvos Kiado, Budapest, Hungary.
  25. SZILAGYI J., 1994: Water-balance modeling in a changing environment: reductions in unconfined aquifer levels in the area between the Danube and Tisza Rivers in Hungary. Master's Thesis, University of New Hampshire, Durham, New Hampshire, USA.
  26. SZILAGYI J., 2001: Modeled areal evaporation trends over the conterminous United States. J. Irrig. Drainage Engng., 127, 4, 196-200.10.1061/(ASCE)0733-9437(2001)127:4(196)
  27. SZILAGYI J., VOROSMARTY C.J., 1997: Water-balance modeling in a changing environment: reductions in unconfined aquifer levels in the area between the Danube and Tisza Rivers in Hungary. J. Hydrol. Hydromech., 45, 348-364.
  28. SZILAGYI J., JOZSA J., 2008: New findings about the complementary relationship based evaporation estimation methods. J. Hydrol., 354, 171-186.10.1016/j.jhydrol.2008.03.008
  29. SZILAGYI J., HOBBINS M., JOZSA J., 2009: A modified Advection-Aridity model of evapotranspiration. J. Hydrol. Engng., 14, 6, 569-574.10.1061/(ASCE)HE.1943-5584.0000026
  30. SZILAGYI J., JOZSA J., 2009a): Analytical solution of the coupled 2-D turbulent heat and vapor transport equations and the complementary relationship of evaporation. J. Hydrol., 372, 61-67.10.1016/j.jhydrol.2009.03.035
  31. SZILAGYI J., JOZSA J., 2009b: Estimating spatially distributed monthly evapotranspiration rates by linear transformations of MODIS daytime land surface temperature data. Hydrol. Earth System Sci., 13, 5, 629-637.10.5194/hess-13-629-2009
  32. SZILAGYI J., JOZSA J., 2009c): An evaporation estimation method based on the coupled 2-D turbulent heat and vapor transport equations. J. Geophys. Res., 114, D06101, doi:10.1029/2008JD010772.10.1029/2008JD010772
DOI: https://doi.org/10.2478/v10098-011-0010-z | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 118 - 130
Published on: Jun 16, 2011
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2011 Jozsef Szilagyi, Akos Kovacs, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons License.

Volume 59 (2011): Issue 2 (June 2011)