Evapotranspiration under advective conditions

Arid and semi-arid regions are heterogeneous landscapes in which irrigated fields are surrounded by arid areas. The advection of sensible heat flux from dry surfaces is a significant source of energy that has to be taken into consideration when evaluating the evaporation from crops growing in these...

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Autor principal: Figuerola, P.I
Otros Autores: Berliner, P.R
Formato: Capítulo de libro
Lenguaje:Inglés
Publicado: 2005
Acceso en línea:Registro en Scopus
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100 1 |a Figuerola, P.I. 
245 1 0 |a Evapotranspiration under advective conditions 
260 |c 2005 
270 1 0 |m Figuerola, P.I.; Dpto. de Ciencias de la Atmósfera, Facultad de Ciencias Exactas y Naturales, Pabellón 2, 2do. Piso, Buenos Aires 1428, Argentina 
506 |2 openaire  |e Política editorial 
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504 |a Dyer, A.J., A review of flux-profile relationships (1974) Boundary-Layer Meteorol, 7, pp. 363-372 
504 |a Figuerola, P.I., Mazzeo, N.A., An analytical model for the prediction of nocturnal and dawn surface temperatures under calm, clear sky conditions (1997) Agric for Meteorol, 85, pp. 229-237 
504 |a Garratt, J.R., The internal boundary layer - A review (1990) Boundary-Layer Meteorol, 50, pp. 171-203 
504 |a Kaimal, J.C., Finnigan, J.J., (1994) Atmospheric Boundary Layer Flows, Their Structure and Measurement., , Oxford University Press, Oxford 
504 |a Kroon, L.J.M., Bink, N.J., Conditional statistics of vertical heat heat fluxes in local advection conditions (1996) Boundary-Layer Meteorol, 80, pp. 50-78 
504 |a Kroon, L.J.M., De Bruin, H.A.R., Atmosphere-vegetation interaction in local advection condition: Effect of lower boundary conditions (1993) Agric For Meteorol, 63, pp. 1-28 
504 |a Lang, A.R.G., McNauthton, K.G., Fazu, C., Bradley, E.F., Inequality of eddy transfer coefficients for vertical transport of sensible and latent heats during advective inversions (1983) Boundary-Layer Meteorol, 25, pp. 25-41 
504 |a McNaughton, K.G., Laubach, J., Unsteadiness as a cause of non-equality of eddy diffusivities for heat and vapour at the base of an advective inversion (1998) Boundary-Layer Meteorol, 88, pp. 479-504 
504 |a Monteith, J.L., Unsworth, M.H., (1990) Principles of Environmental Physics, 2nd Edn., , Arnold, London 
504 |a Ortega-Farias, S.O., Cuenca, R.H., Ek, M., Daytime variation of sensible heat flux estimated by the bulk aerodynamic method, over a grass canopy (1996) Agric for Meteorol, 81, pp. 131-143 
504 |a Papadakis, G., Frangoudakis, A., Kyritsis, S., Modelling of heat and mass transfer in tomato crop (1994) J Agric Eng Res, 57, pp. 227-227 
504 |a Polonio, D., Soler, M.R., Surface fluxes estimation over agricultural areas. Comparison of methods and the effects of land surface inhomogeneity (2000) Theor Appl Climatol, 67, pp. 65-79 
504 |a Prueger, J.H., Hipps, L.E., Cooper, D.I., Evaporation and the development of the local boundary layer over an irrigated surface in an arid region (1996) Agric for Meteorol, 78, pp. 223-237 
504 |a Rana, G., Katerji, N., Mastrorilli, M., Canopy resistance modelling for crops in contrasting water conditions (1998) Phys Chem Earth, 23 (4), pp. 433-438 
504 |a Rana, G., Katerji, N., Matrorilli, M., El Moujabber, M., Brisson, N., Validation of a model of actual evapotranspiration for water stressed soybeans (1997) Agric For Meteorol, 86, pp. 215-224 
504 |a Rao, K.S., Wyngaard, J.C., Cote, O.R., Local Advection of Momentum, Heat, and Moisture in Micrometeorology (1974) Boundary-Layer Meteorol, 7, pp. 331-348 
504 |a Robinson, S.M., Computing wind profile parameters (1962) J Atmos Sci, 19, pp. 189-190 
504 |a Thom, A.S., Oliver, H.R., On Penman's equation for estimating regional evaporation (1977) QJR Meteorol Soc, 103, pp. 345-357 
504 |a Todd, R.W., Evett, S.R., Howell, T.A., The Bowen ratio-energy balance method for estimating latent heat flux of irrigated alfalfa evaluated in a semi-arid, advective environmental (2000) Agric for Meteorol, 103, pp. 335-348 
504 |a Verma, S.B., Rosenberg, N.J., Blad, B.L., Turbulent exchange coefficients for sensible heat and water vapor under advective conditions (1978) J Appl Meteorol, 17, pp. 330-338 
520 3 |a Arid and semi-arid regions are heterogeneous landscapes in which irrigated fields are surrounded by arid areas. The advection of sensible heat flux from dry surfaces is a significant source of energy that has to be taken into consideration when evaluating the evaporation from crops growing in these areas. The basic requirement of most of the common methods for estimating evapotranspiration [Bowen ratio, aerodynamic and Penman-Monteith (PM) equation] is that the horizontal fluxes of sensible and latent heat are negligible when compared to the corresponding vertical fluxes. We carried out measurements above an irrigated tomato field in a desert area. Latent and sensible heat fluxes were measured using a four-level Bowen machine with aspirated psychrometers. Our results indicate that under advective conditions only measurements carried out in the lowest layer are satisfactory for the estimation of latent heat fluxes and that the use of the PM equation with an appropriately parameterized canopy resistance may be preferable. © ISB 2005.  |l eng 
536 |a Detalles de la financiación: Universidad de Buenos Aires 
536 |a Detalles de la financiación: National Research Council of Science and Technology 
536 |a Detalles de la financiación: Ben-Gurion University of the Negev 
536 |a Detalles de la financiación: Consejo Nacional de Investigaciones Científicas y Técnicas 
536 |a Detalles de la financiación: Acknowledgements During her visit to the Jacob Blaustein Institute of the Ben Gurion University of the Negev P. Figuerola received a fellowship from the FOMEC (University of Buenos Aires, Argentina) and from the CONICET (National Council for Science and Technology, Argentina). 
593 |a Dpto. de Ciencias de la Atmósfera, Facultad de Ciencias Exactas y Naturales, Pabellón 2, 2do. Piso, Buenos Aires 1428, Argentina 
593 |a Wyler Department of Dryland Agriculture, Blaustein Institute for Desert Research, Ben-Gurion University of the Negev, Israel 
593 |a Arid Land Research Centre, Tottori University, Tottori, Japan 
690 1 0 |a ADVECTION 
690 1 0 |a EVAPOTRANSPIRATION 
690 1 0 |a EVAPOTRANSPIRATION MODELS 
690 1 0 |a WATER 
690 1 0 |a AIR 
690 1 0 |a ARTICLE 
690 1 0 |a CHEMISTRY 
690 1 0 |a CROP 
690 1 0 |a DESERT CLIMATE 
690 1 0 |a HEAT 
690 1 0 |a THEORETICAL MODEL 
690 1 0 |a TOMATO 
690 1 0 |a VOLATILIZATION 
690 1 0 |a WIND 
690 1 0 |a AIR MOVEMENTS 
690 1 0 |a CROPS, AGRICULTURAL 
690 1 0 |a DESERT CLIMATE 
690 1 0 |a HEAT 
690 1 0 |a LYCOPERSICON ESCULENTUM 
690 1 0 |a MODELS, THEORETICAL 
690 1 0 |a VOLATILIZATION 
690 1 0 |a WATER 
690 1 0 |a WIND 
690 1 0 |a ARIDA 
690 1 0 |a LYCOPERSICON ESCULENTUM 
700 1 |a Berliner, P.R. 
773 0 |d 2005  |g v. 49  |h pp. 403-416  |k n. 6  |p Int. J. Biometeorol.  |x 00207128  |w (AR-BaUEN)CENRE-317  |t International Journal of Biometeorology 
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