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Observations and modeling of turbulent fluxes during melt at the shrub-tundra transition zone 1: point scale variations

机译:灌木-苔原过渡带融化过程中湍流通量的观测和模拟1:点尺度变化

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摘要

Vegetation has a significant influence on snow accumulation and energy availability for snowmelt. This is particularly true in the vicinity of the arctic treeline, characterized by the alternation of shrub-tundra and open-tundra, with the former expected to spread more and more. This work considers the time variation in turbulent fluxes over two open-tundra and shrub-tundra sites, where measurements of sensible and latent heat fluxes over the canopy are available. An improved version of the GEOtop hydrological model with a dual-layer surface scheme has been used to interpret and reproduce the measurements. The model allows us to separate the contribution of the vegetation and the surface to the turbulent fluxes measured above the canopy and, despite some issues related to the parameterization of the turbulence in the canopy, is able to reasonably reproduce the turbulent fluxes measured above the vegetation and the snowmelt acceleration observed in the shrub-tundra. The maximum energy contribution to the surface during snowmelt is found to occur for values of the leaf and stem area index around 1.0. The model proves to be a valuable platform to be applied in a distributed model to predict the spatial variability of snowmelt and surface energy balance.
机译:植被对积雪和融雪的能量供应具有重大影响。在北极林线附近尤其如此,其特征是灌木冻原和开放冻原交替出现,预计前者会越来越多地传播。这项工作考虑了两个开放冻原和灌木冻原站点上湍流通量的时间变化,在那里可以测量冠层上的感热通量和潜热通量。具有双层表面方案的GEOtop水文模型的改进版本已用于解释和再现测量结果。该模型使我们能够将植被和地表对冠层上方测得的湍流通量的贡献分开,并且尽管存在一些与冠层内湍流的参数化有关的问题,但仍能够合理地再现植被上方测得的湍流通量和在灌木冻原中观察到的融雪加速。发现在融雪期间对表面的最大能量贡献发生在叶和茎面积指数约为1.0的情况下。该模型被证明是可用于分布式模型中以预测融雪的空间变异性和表面能平衡的有价值的平台。

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