A calibration-free formulation of the complementary relationship of evaporation for continental-scale hydrology
نویسندگان
چکیده
An important scaling consideration is introduced into the formulation of the complementary relationship (CR) of land surface evapotranspiration (ET) by specifying the maximum possible evaporation rate (Epmax) of a small water body (or wet patch) as a result of adiabatic drying from the prevailing near-neutral atmospheric conditions. In dimensionless form the CR therefore becomes yB= f( Epmax Ep Epmax EwxB) = f(X) = 2X X, where yB= ET/Ep, xB= Ew/Ep. Ew is the wet-environment evaporation rate as given by the Priestley-Taylor equation, Ep is the evaporation rate of the same small wet surface for which Epmax is specified and estimated by the Penman equation. With the help of North American Regional Reanalysis data, the CR this way yields better continental-scale performance than earlier, calibrated versions of it and is on par with current land surface model results, the latter requiring vegetation, soil information and soil moisture bookkeeping. Validation has been performed by Parameter-Elevation Regressions on Independent Slopes Model precipitation and United States Geological Survey runoff data. A novel approach is also introduced to calculate the value of the Priestley-Taylor parameter to be used with continental-scale data, making the new formulation of the CR completely calibration free.
منابع مشابه
The Budyko and complementary relationships in an idealized model of large-scale land–atmosphere coupling
Two well-known relationships in hydrology and hydrometeorology, the Budyko and complementary relationships, are examined within an idealized prototype representing the physics of large-scale land–atmosphere coupling developed in prior work. These relationships are shown to hold on long (climatologic) timescales because of the tight coupling that exists between precipitation, atmospheric radiati...
متن کاملComplementary-relationship-based evapotranspiration mapping (cremap) technique for Hungary
Monthly areal evapotranspiration (ET) rates for 2000–2008 are mapped for Hungary at a spatial scale of about 1-km with the help of MODIS daytime land surface temperature as well as sunshine duration, air temperature and humidity data. Mapping is achieved by a linear transformation of the MODIS daytime land surface temperature values employing the complementary relationship of evaporation. Valid...
متن کاملMechanistic Simulation of Tree Effects in an Urban Water Balance Model
A semidistributed, physical-based Urban Forest Effects – Hydrology (UFORE-Hydro) model was created to simulate and study tree effects on urban hydrology and guide management of urban runoff at the catchment scale. The model simulates hydrological processes of precipitation, interception, evaporation, infiltration, and runoff using data inputs of weather, elevation, and land cover along with nin...
متن کاملواسنجی و ارزیابی ﻋﻤﻠﮑﺮد مدلهای ﻫﯿﺪروﻟﻮژی IHACRES و SWATدر شبیهسازی روانآب
The runoff simulation have particular importance in Civil works, river training, design and planning of ground water resources, flood control and prevention of environmental hazards and reduction of erosion and sedimentation in the watershed. The runoff in each region varies according to climatic conditions, hydrological, soil and vegetation in the basin. Simulate these processes need to ...
متن کاملTesting the generalized complementary relationship of evaporation with continental-scale long-term water-balance data
a School of Natural Resources, Conservation and Survey Division, University of Nebraska-Lincoln, Lincoln, NE 68583, USA Department of Hydraulic and Water Resources Engineering, Budapest University of Technology and Economics, Muegyetem Rakpart. 3–9, 1111 Budapest, Hungary Department of Civil and Environmental Engineering, Bucknell University, Lewisburg, PA 17837, USA Department of Biological En...
متن کامل