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How does DEM resolution affect microtopographic characteristics, hydrologic connectivity, and modelling of hydrologic processes?

机译:DEM分辨率如何影响微拷贝特性,水文连接和水文过程的建模?

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The resolution of a digital elevation model (DEM) is a crucial factor in watershed hydrologic and environmental modelling. DEM resolution can cause significant variability in the representation of surface topography, which further affects quantification of hydrologic connectivity and simulation of hydrologic processes. The objective of this study is to examine the effects of DEM resolution on (1) surface microtopographic characteristics, (2) hydrologic connectivity, and (3) the spatial and temporal variations of hydrologic processes. A puddle-to-puddle modelling system was utilized for surface delineation and modelling of the puddle-to-puddle overland flow dynamics, surface runoff, infiltration, and unsaturated flow for nine DEM resolution scenarios of a field plot surface. Comparisons of the nine modelling scenarios demonstrated that coarser DEM resolutions tended to eliminate topographic features, reduce surface depression storage, and strengthen hydrologic connectivity and surface runoff. We found that reduction in maximum depression storage and maximum ponding area was as high as 97.56% and 76.36%, respectively, as the DEM grid size increased from 2 to 80 cm. The paired t-test and fractal analysis demonstrated the existence of a threshold DEM resolution (10 cm for the field plot), within which the DEM-based hydrologic modelling was effective and acceptable. The effects of DEM resolution were further evaluated for a larger surface in the Prairie Pothole Region subjected to observed rainfall events. It was found that simulations based on coarser resolution DEMs ( 10 m) tended to overestimate ponded areas and underestimate runoff discharge peaks. The simulated peak discharge from the Prairie Pothole Region surface reduced by approximately 50% as the DEM resolution changed from 2 to 90m. Fractal analysis results elucidated scale dependency of hydrologic and topographic processes. In particular, scale analysis highlighted a unique constant-threshold-power relationship between DEM scale and topographic and hydrologic parameters/variables. Not only does this finding allow one to identify threshold DEM but also further develop functional relationships for scaling to achieve valid topographic characterization as well as effective and efficient hydrologic modelling. Copyright (C) 2016 John Wiley & Sons, Ltd.
机译:数字高度模型(DEM)的分辨率是流域水文和环境建模的关键因素。 DEM分辨率可能在表面形貌的表示中造成显着的可变性,这进一步影响了水文连接的量化和水文过程的模拟。本研究的目的是检查DEM分辨率对(1)表面微拷贝特性,(2)水文连接的影响,以及(3)水文过程的空间和时间变化。用于表面描绘和模拟水坑 - 覆盆子覆风动力学,表面径流,渗透和不饱和流的表面描绘和建模,用于九个DEM图谱表面的九个DEM分辨率场景。九种建模情景的比较表明,较粗糙的DEM分辨率倾向于消除地形特征,减少表面抑郁储存,并加强水文连接和表面径流。我们发现,最大凹陷储存和最大池区的减少分别高达97.56%和76.36%,因为DEM网格尺寸从2到80厘米增加。配对T检验和分形分析证明存在阈值DEM分辨率(用于场图10cm),在其中,基于DEM的水文建模是有效和可接受的。在经过观察到的降雨事件的草原坑洞区域的较大表面进一步评估了DEM分辨率的影响。结果发现,基于粗糙分辨率DEMS(> 10米)的仿真倾向于高估到池塘区域和低估径流放电峰。随着DEM分辨率从2到90米的变化发生变化,从大草原坑孔区域表面的模拟峰值放电约为50%。分形分析结果阐明了水文和地形工艺的规模依赖性。特别地,规模分析突出显示DEM标度和地形和水文参数/变量之间的独特恒定阈值 - 电力关系。该发现不仅允许人们识别阈值DEM,还可以进一步开发功能关系,以便进行缩放以实现有效的地形表征以及有效和有效的水文建模。版权所有(c)2016 John Wiley&Sons,Ltd。

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