A nonparametric approach to estimating terrestrial evaporation: Validation in eddy covariance sites

被引:32
|
作者
Liu, Yuanbo [1 ]
Hiyama, Tetsuya [2 ]
Yasunari, Tetsuzo [3 ]
Tanaka, Hiroki [3 ]
机构
[1] Chinese Acad Sci, State Key Lab Lake Sci & Environm, Nanjing Inst Geog & Limnol, Nanjing 210008, Peoples R China
[2] Res Inst Human & Nat, Kita Ku, Kyoto 6038047, Japan
[3] Nagoya Univ, Hydrospher Atmospher Res Ctr, Chikusa Ku, Nagoya, Aichi 4648601, Japan
关键词
Terrestrial evaporation; Parameterization; The Hamiltonian; Eddy covariance; Land surface model; ENERGY-BALANCE METHOD; LAND-SURFACE MODELS; BOWEN-RATIO; MICROMETEOROLOGICAL METHODS; STOMATAL CONDUCTANCE; HYDROLOGICAL CYCLE; HEAT-FLUX; TEMPERATURE; CLIMATE; EVAPOTRANSPIRATION;
D O I
10.1016/j.agrformet.2012.01.012
中图分类号
S3 [农学(农艺学)];
学科分类号
0901 ;
摘要
Terrestrial evaporation is essential to the global hydrological cycle and climate systems. It is a complicated energy and mass transfer process that involves radiation, conduction, diffusion, convection, and surface-atmosphere interactions. The energetic and diffusive controls on evaporation were combined in the contemporary theory (e.g. the Penman-Monteith equation), in which surface-atmosphere interfacial transfer coefficients were adopted and parameterized semi-empirically or empirically to achieve a solution to evaporation. The solution achieved through this parameterization leaves unsolvable uncertainty. Thus, the theory of evaporation remains diagnostic rather than predictive. Here we show that terrestrial evaporation can be predicted without parameterization. Terrestrial evaporation, as a mechanical and thermodynamic process, follows Hamilton's principle in the macro-state. With surface temperature as a generalized coordinate of the Hamiltonian, and incorporating equilibrium evaporation, we present a nonparametric solution in a simple analytical form. We used observational data collected at 26 eddy covariance sites to test the effectiveness and the generality of the solution. Results showed good agreements between the estimated and the observed values, by an absolute difference of 10.3 +/- 20.2 W m(-2) for latent heat flux (evaporation) and -11.8 +/- 21.0 W m(-2) for sensible heat flux, for all the tested sites. Further examination demonstrated that the proposed approach achieved the performance compatible to the Penman-Monteith approach. We anticipate our analysis to be a starting point for more sophisticated investigation into the complex nature of terrestrial evaporation. Its simplicity should have potential value in applications, in addition to contributing to fundamental theory. Crown Copyright (c) 2012 Published by Elsevier B.V. All rights reserved.
引用
收藏
页码:49 / 59
页数:11
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