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The influence of DEM resolution on simulated solar radiation-induced glacier melt

机译:DEM分辨率对模拟太阳辐射诱发的冰川融化的影响

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摘要

The influence of digital elevation model (DEM) resolution to modelled glacier melt during peak melt production was evaluated by performing a clear sky GIS radiation simulation over the Peyto Glacier in the Canadian Rockies. DEMs were generated at eight resolutions ranging from 1 m to 1000 m grid spacing from airborne lidar data. When applied to the planar area (PA) of the terrain, it was found that total melt increased with DEM resolution (r~2 = 0.63) by 4% over 3 orders of magnitude. This systematic scaling-effect was mitigated at the basin scale, however, when the DEM slope variant area (SVA) was used to account for the increased divergence from PA as resolution increases. However, even after the inclusion of SVA in glacier surface melt simulations, localized melt variations with scale were still evident in the ablation and accumulation zone observations. In the ablation zone, there was a systematic increase in simulated melt (~4%) as resolution decreased from 1 m to 1000 m (r~2 = 0.89), with the opposite effect in the accumulation zone (r~2 = 0.81). DEM resolution also affected the diurnal melt cycle, such that for the entire glacier there was a tendency for a morning over-estimation and afternoon underestimation of melt rate with decreasing resolution. For the accumulation zone, there was an increased melt rate at low resolutions occurring in the afternoon, while in the ablation zone there was a tendency for increasing melt rates with decreasing resolution throughout the day. These localized spatio-temporal variations in simulated melt are largely due to the lowering of ridges and raising of valley floors that occur as resolution decreases. This scale dependence in the representation of terrain morphology directly controls the pattern and relative proportion of direct beam shadowing over actively melting surfaces and thereby has a systematic influence on the grid cell-level hydrological balance. It is recommended that GIS-based glacier melt modelling routines take into account the slope area of grid cells, while noting that the choice of DEM scale can have a discernible and systematic influence on modelled runoff magnitude. It is important to note that while higher grid resolutions mitigate the effect of terrain smoothing on spatio-temporal melt patterns, lower resolutions actually mitigate the systematic error associated with assuming all surface areas are planar.
机译:通过对加拿大落基山脉的佩托冰川进行晴空GIS辐射模拟,评估了数字高程模型(DEM)分辨率对峰值融化生产过程中模拟的冰川融化的影响。从机载激光雷达数据以1 m至1000 m网格间距的八种分辨率生成DEM。当应用于地形的平面区域(PA)时,发现总熔体在DEM分辨率下(r〜2 = 0.63)在3个数量级上增加了4%。但是,当使用DEM斜率变化面积(SVA)来说明随着分辨率提高而与PA的差异增大时,这种系统的缩放效应在盆地尺度上得到缓解。但是,即使在冰川表面熔体模拟中包含了SVA之后,在烧蚀和积聚区的观测中,局部熔体随尺度的变化仍然很明显。在消融区,随着分辨率从1 m降低至1000 m(r〜2 = 0.89),模拟熔体有系统地增加(〜4%),而在累积区则相反(r〜2 = 0.81) 。 DEM的分辨率也影响了昼夜的融化周期,因此,整个冰川有一个趋势,即随着分辨率的降低,早晨高估了融化速率,而下午低估了融化速率。对于聚集区,在下午以低分辨率发生的熔解速率增加,而在消融区中,全天都有以降低的消解率增加熔解速率的趋势。模拟熔体中的这些局部时空变化主要是由于分辨率降低而导致的山脊降低和谷底升高所致。地形形态表示中的这种比例依赖性直接控制了活跃融化表面上直接波束阴影的模式和相对比例,从而对网格单元级水文平衡产生系统性影响。建议基于GIS的冰川融化模型例程考虑网格单元的斜率面积,同时要注意DEM比例的选择可以对建模的径流大小产生可辨别的系统影响。重要的是要注意,虽然较高的网格分辨率会缓解地形平滑对时空融化模式的影响,但较低的分辨率实际上会缓解与假设所有表面积均为平面相关的系统误差。

著录项

  • 来源
    《Hydrological Processes》 |2010年第6期|775-788|共14页
  • 作者单位

    Applied Geomatics Research Group, Centre of Geographic Sciences, 50 Elliot Road, Lawrencetown, Nova Scotia, B0S 1M0, Canada;

    Cold Regions Research Centre, Wilfrid Laurier University, Waterloo, Ontario, Canada;

    Department of Geography, University of Toronto, Mississauga, Ontario, Canada;

    Natural Resources Canada, Geological Survey of Canada, Ottawa, Ontario, Canada;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    DEM resolution; lidar; scaling; radiation balance; glacier melt; GIS;

    机译:DEM分辨率;激光雷达缩放辐射平衡冰川融化地理信息系统;

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