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首页> 外文期刊>Canadian Journal of Forest Research >The effects of spatial aggregation of complex topography on hydroecological process simulations within a rugged forest landscape: development and application of a satellite-based topoclimatic model
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The effects of spatial aggregation of complex topography on hydroecological process simulations within a rugged forest landscape: development and application of a satellite-based topoclimatic model

机译:复杂地形的空间聚集对崎forest森林景观内水文生态过程模拟的影响:基于卫星的地形气候模型的开发和应用

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摘要

We evaluated the effects of topographic complexity on landscape carbon and hydrologic process simulations within a rugged mixed hardwood forest by developing and applying a satellite-based hydroecological model at multiple spatial scales. The effects of topographic variability were evaluated by aggregating raster-based digital elevation model and satellite-derived leaf area index inputs across eight different spatial resolutions from 30 m (62 208 pixels) to 2160 m (12 pixels). Our modeling analysis showed that the effect of topography was the strongest on solar radiation and temperature, intermediate on soil water and evapotranspiration, and ambiguous on soil respiration. Spatial aggregation of model inputs smoothed heterogeneous spatial patterns of modeled output variables relative to fine-scale results. Model outputs varied nonlinearly with different levels of spatial aggregation, while spatial variability of model inputs and outputs were dampened at increasingly coarse aggregation levels. Biases in spatially aggregated model predictions were generally less than +/-10%, except for solar radiation, which showed biases of up to +50% at coarser spatial scales. The large positive bias in the solar radiation implies that overestimation of biophysical variables that are sensitive to solar radiation (e.g., photosynthesis and net primary production) may be considerable in rugged forested landscapes unless subgrid scale effects are accounted for.
机译:通过在多个空间尺度上开发和应用基于卫星的水生态模型,我们评估了地形复杂性对崎mixed的硬木混交林中景观碳和水文过程模拟的影响。通过汇总基于栅格的数字高程模型和跨30 m(62 208像素)到2160 m(12像素)的八个不同空间分辨率的卫星衍生叶面积指数输入,评估了地形变异性的影响。我们的模型分析表明,地形对太阳辐射和温度的影响最大,对土壤水分和蒸散量的影响中等,对土壤呼吸的影响不明确。模型输入的空间聚集相对于精细结果,平滑了模型输出变量的异构空间模式。模型输出随空间聚合级别的不同而非线性变化,而模型输入和输出的空间变异性则随着聚合级别的提高而减弱。空间聚集模型预测中的偏差通常小于+/- 10%,但太阳辐射除外,后者在较粗的空间尺度上显示出高达+ 50%的偏差。太阳辐射的大正偏差意味着在崎的森林景观中高估了对太阳辐射敏感的生物物理变量(例如光合作用和净初级生产),除非考虑了亚网格规模的影响。

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