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首页> 外文期刊>Journal of Hydrology >A hybrid dual-source model for potential evaporation and transpiration partitioning
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A hybrid dual-source model for potential evaporation and transpiration partitioning

机译:潜在蒸发和蒸腾分配的混合双源模型

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Potential ET (PET) and partitioning of evaporation and transpiration are important information for hydrologic, ecologic, forest, and agricultural studies. Most PET models were developed in flat areas for agricultural purposes, with potential evaporation (PE) and potential transpiration (PT) lumped together. To quantify the evaporative demand for sloped surfaces with a wide range of vegetation coverage, a topography-and vegetation-based surface energy partitioning algorithm for PE and PT estimates (TVET) is developed. In this paper, vegetation-based part of the TVET model is presented. TVET employs a hybrid of layer and patch approaches in partitioning energy and routing vapor and sensible heat. It first uses a layer approach to partition available energy for the canopy and the soil components. The available energy of each component is then partitioned into potential latent heat and sensible heat, using a patch approach. Hybrid of these two approaches results in simple model formulae, while coupling the two components in terms of energy partitioning and aerodynamic resistances for heat and vapor transfer. TVET is different from a layer-approach model in that it distinguishes the difference in evaporation from inter-canopy soil and from under-canopy soil, and limits convective transfer contribution to transpiration only for vegetation-cover fraction. TVET is different from a patch-approach model in that it allows evaporation occurring from under-canopy soil, and that vegetation effect on both evaporation and transpiration is well considered. These features make TVET sensitive to vegetation effect on surface energy partitioning. The model is demonstrated and tested with Penman-Monteith and Shuttleworth-Wallace models, and with observations, at four sites covering mountain, basin floor, and riparian environments. The results indicate that TVET can be used to estimate PE and PT partitioning for a wide range of surfaces with different fractional vegetation cover. Good estimates of riparian surface evapotranspiration at the Rio Grande in the central New Mexico suggest its capacity to estimate ET in similar environments.
机译:潜在的ET(PET)以及蒸发和蒸腾作用的分区是水文,生态,森林和农业研究的重要信息。大部分PET模型是在平坦地区开发的,用于农业用途,潜在蒸发量(PE)和潜在蒸腾量(PT)集中在一起。为了量化具有广泛植被覆盖范围的倾斜表面的蒸发需求,开发了基于地形和植被的表面能分配算法,用于PE和PT估计(TVET)。本文介绍了TVET模型中基于植被的部分。 TVET采用分层和贴片混合的方法来分配能量,并输送蒸气和显热。它首先使用分层方法来分配冠层和土壤成分的可用能量。然后使用补丁方法将每个组件的可用能量划分为潜在的潜热和显热。这两种方法的混合产生了简单的模型公式,同时在能量分配和热和蒸汽传递的空气动力学阻力方面耦合了这两个组件。 TVET与分层方法的不同之处在于,TVET区分了冠层间土壤和冠层下土壤的蒸发差异,并将对流转移对蒸腾作用的贡献仅限于植被覆盖部分。 TVET与膜片贴近法模型不同,在于它允许从冠层下的土壤中蒸发,并且充分考虑了植被对蒸发和蒸腾作用的影响。这些特征使TVET对植被对表面能分配的影响敏感。该模型已在Penman-Monteith和Shuttleworth-Wallace模型以及观察下的四个地点进行了论证和测试,这些地点涵盖了山脉,盆地底部和河岸环境。结果表明,TVET可用于估计植被覆盖率不同的大范围表面的PE和PT分区。对新墨西哥州中部里奥格兰德州河岸地表蒸散量的良好估算表明,它有能力估算类似环境中的ET。

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