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Spatial-temporal variability in solar radiation during spring snowmelt

机译:春季融雪期间太阳辐射的时空变化

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Much of the spring landscape of arctic regions is dominated by a patchy snow cover with implications for both spring melt runoff and atmospheric fluxes. In addition to a variable end-of-winter snowpack, spatial differences in snowmelt energy terms play an important role in the development of this patchy snow cover. This paper focuses specifically on the influence of solar radiation on snowmelt by using a model to simulate the small-scale variability of solar radiation incident on the ground surface due to topographic influences over a small arctic catchment. The model only requires a digital elevation model (DEM) and measured global radiation. Despite the relatively low relief (average slope 3°) of the study area, the results showed solar radiation differences of up to 10% of the area-wide mean over the melt period. This would result in differences in snowmelt amounts of up to 50 mm, a value similar in magnitude to the overall mean end-of-winter snow water equivalent in the study region. An analysis of the effects of changing model scale showed that the simulated variability decreased substantially for larger grid sizes. The results show that the small-scale variability of solar radiation contributes greatly to the mosaic patterns in melting snow covers of arctic regions, affects the timing and amount of meltwater release and influences the surface energy balance of these areas considerably.
机译:北极地区的大部分春季景观以零星的积雪为主,对春季融雪径流和大气通量都有影响。除了可变的冬季末雪堆以外,融雪能量方面的空间差异在这种零星积雪的发展中也起着重要作用。本文通过使用模型来模拟由于小北极集水区的地形影响而入射到地面的太阳辐射的小范围变化,专门研究太阳辐射对融雪的影响。该模型仅需要数字高程模型(DEM)和测得的全局辐射。尽管研究区域的起伏相对较低(平均倾斜度为3°),但结果显示,在融化期间,太阳辐射差异高达整个区域平均值的10%。这将导致融雪量的差异最大为50毫米,该数值的大小与研究区域的整个冬季平均平均雪水当量相当。对改变模型规模的影响的分析表明,对于较大的网格尺寸,模拟的可变性大大降低。结果表明,太阳辐射的小范围变化极大地促进了北极地区积雪融化中的镶嵌图案,影响了融水释放的时间和数量,并极大地影响了这些地区的表面能平衡。

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