The influence of wind stress, temperature, and humidity gradients on evaporation from reservoirs

被引:39
作者
Condie, SA [1 ]
Webster, IT [1 ]
机构
[1] CSIRO, CANBERRA, ACT 2601, AUSTRALIA
关键词
D O I
10.1029/97WR02405
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Evaporation from fetch-limited water bodies has been investigated for the first time using a coupled atmospheric boundary layer-water body model, The model incorporates a simplified atmospheric boundary layer in which heat and moisture are advected horizontally and diffused vertically. The wind field evolves over the water body through the formation of ail internal boundary layer, which is initiated by the change in roughness from the land to the water surface. The wind also responds to local stability through the inclusion of Monin-Obukhov similarity functions. This system is coupled to a dynamically active water body based on primitive equations with full thermodynamics. This is achieved through continuity of Stress and heat flux through the air-water interface. The model results reveal that along-wind gradients in wind stress, humidity, and temperature can all significantly influence evaporation, The most important effects are growing wind stress and increasing humidity as we move downwind across the water body. However, there is a tendency for these effects to cancel, so that the behavior can range from areally averaged evaporation weakly decreasing with fetch for very smooth land surfaces to weakly increasing with fetch for relatively rough land terrain. For most situations of interest, such as typical agricultural settings, evaporation is essentially independent of fetch. All the model results have been summarized in a simple empirical expression for evaporation based exclusively on meteorological data from over the upwind land surface: This is in good agreement with detailed measurements from a small lake in southeastern Australia.
引用
收藏
页码:2813 / 2822
页数:10
相关论文
共 28 条
[1]   EVAPORATION FROM HEATED WATER BODIES - PREDICTING COMBINED FORCED PLUS FREE-CONVECTION [J].
ADAMS, EE ;
COSLER, DJ ;
HELFRICH, KR .
WATER RESOURCES RESEARCH, 1990, 26 (03) :425-435
[2]   DIAGNOSTIC AND PROGNOSTIC NUMERICAL CIRCULATION STUDIES OF THE SOUTH-ATLANTIC BIGHT [J].
BLUMBERG, AF ;
MELLOR, GL .
JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1983, 88 (NC8) :4579-4592
[4]  
Dyer A. J., 1974, Boundary-Layer Meteorology, V7, P363, DOI 10.1007/BF00240838
[5]  
Elliott W. P, 1958, T AM GEOPHYS UNION, V39, P1048
[6]  
GLANZ DJ, 1973, DACW2773C0064 WAT RE
[7]  
HARBECK GE, 1962, 272E US GEOL SURV PR
[8]   CALCULATING THE SURFACE-ENERGY BALANCE FOR LAKE AND RESERVOIR MODELING - A REVIEW [J].
HENDERSONSELLERS, B .
REVIEWS OF GEOPHYSICS, 1986, 24 (03) :625-649
[9]  
JENSEN NO, 1978, Q J ROY METEOR SOC, V104, P351, DOI 10.1002/qj.49710444009
[10]  
Kaimal J. C., 1994, ATMOSPHERIC BOUNDARY, DOI DOI 10.1093/OSO/9780195062397.001.0001