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The Influence of Rain Sensible Heat and Subsurface Energy Transport on the Energy Balance at the Land Surface

机译:雨水传热和地下能量传输对陆地表面能量平衡的影响

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摘要

In land surface models, which account for the energy balance at the land surface, subsurface heat transport is an important component that reciprocally influences ground, sensible, and latent heat fluxes and net radiation. In most models, subsurface heat transport parameterizations are commonly simplified for computational efficiency. A simplification made in all models is to disregard the sensible heat of rain, Hl, and convective subsurface heat flow, qcv, i.e., the convective transport of heat through moisture redistribution. These simplifications act to decouple heat transport from moisture transport at the land surface and in the subsurface, which is not realistic. The influence of Hl and qcv on the energy balance was studied using a coupled model that integrates a subsurface moisture and energy transport model with a land surface model of the land surface energy balance, showing that all components of the land surface energy balance depend on Hl. The strength of the dependence is related to the rainfall rate and the temperature difference between the rain water and the soil surface. The rain water temperature is a parameter rarely measured in the field that introduces uncertainty in the calculations and was approximated using the either air or wet bulb temperatures in different simulations. In addition, it was shown that the lower boundary condition for closing the problem of subsurface heat transport, including convection, has strong implications on the energy balance under dynamic equilibrium conditions. Comparison with measured data from the Meteostation Haarweg, Wageningen, the Netherlands, shows good agreement and further underscores the importance of a more tightly coupled subsurface hydrology-energy balance formulation in land surface models.
机译:在考虑了地面能量平衡的地表模型中,地下热传输是对地面,显热和潜热通量及净辐射产生相互影响的重要组成部分。在大多数模型中,地下热传输参数化通常会简化以提高计算效率。所有模型中的简化是忽略雨水的显热H1和对流地下热流qcv,即通过水分重新分布进行对流热传递。这些简化措施使陆地表面和地下的热传输与湿气传输脱钩,这是不现实的。使用耦合模型研究了Hl和qcv对能量平衡的影响,该模型将地下水分和能量传输模型与陆地表面能量平衡的土地表面模型集成在一起,表明土地表面能量平衡的所有组成部分都取决于Hl 。依赖性的强弱与降雨率和雨水与土壤表面之间的温差有关。雨水温度是在现场很少测量的参数,会在计算中引入不确定性,并且在不同模拟中使用空气或湿球温度进行估算。此外,研究表明,解决地下热传递问题(包括对流问题)的下边界条件对动态平衡条件下的能量平衡具有重要影响。与来自荷兰瓦赫宁根的Meteostation Haarweg的测量数据的比较显示出很好的一致性,并进一步强调了在地面模型中更紧密耦合的地下水文学-能量平衡公式的重要性。

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