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Spatial relationships between soil moisture patterns and topographic variables at multiple scales in a humid temperate forested catchment

机译:湿润温带森林流域多尺度土壤水分模式与地形变量之间的空间关系

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摘要

New tools are needed in hydrology to improve our understanding of process heterogeneity and its relationship to catchment topography. We tested the distance-based Moran's eigenvector maps (DBMEM) method, which models patterns using a combination of positively and negatively autocorrelated structures, searching for soil moisture characteristic scales in a temperate humid forested system. We focused on three questions: (1) What are the characteristic spatial scales of shallow soil moisture? (2) Is there a strong relationship between soil moisture patterns and topographic variables at these scales? and (3) Which hydro-meteorological variables influence soil moisture scales and topographic controls in a significant way? Data consisted of 16 surveys of soil moisture at depths of 5, 15, 30, and 45 cm in the 5.1 ha Hermine catchment (Laurentians, Canada). The global DBMEM model explained 21 to 96% (adjusted R square) of the spatial variations in soil moisture apportioned into decreasing fractions over six spatially nested, additive submodels: very large (0.85-1.4 ha), large (0.54-0.85 ha), meso (0.50-0.54 ha), fine positive (0.22-0.50 ha), fine negative (0.10-0.22 ha), and very fine (0.02-0.10 ha). The effects of catchment topography (e.g., slope and contributing area) on soil moisture were significant at large and very large scales. Moisture patterns at these scales were dependent on previous storm properties and were good predictors of catchment response. The DBMEM approach provided insightful quantitative evidence regarding the temporal dependency of the relationships between dynamic soil moisture content and static topographic variables across scales.
机译:水文学需要新的工具来增进我们对过程异质性及其与流域地形关系的理解。我们测试了基于距离的Moran特征向量图(DBMEM)方法,该方法使用正负自相关结构的组合对模式进行建模,在温带潮湿森林系统中搜索土壤湿度特征尺度。我们关注三个问题:(1)浅层土壤水分的特征空间尺度是什么? (2)在这些尺度下,土壤水分模式与地形变量之间是否存在很强的关系? (3)哪些水文气象变量对土壤湿度尺度和地形控制有重大影响?数据包括对5.1公顷Hermine集水区(加拿大Laurentians)的5、15、30和45厘米深度的土壤湿度进行的16次调查。全局DBMEM模型解释了六个至六个空间嵌套的加性子模型中土壤水分的空间变化的21%至96%(调整后的R平方),比例逐渐减小:非常大(0.85-1.4公顷),大(0.54-0.85公顷),中观(0.50-0.54公顷),精细正极(0.22-0.50公顷),精细负极(0.10-0.22公顷)和非常精细(0.02-0.10公顷)。集水区地形(例如坡度和影响面积)对土壤水分的影响在很大和非常大的范围内都是显着的。这些尺度的水分模式取决于先前的暴风雨性质,并且是流域响应的良好预测指标。 DBMEM方法提供了关于跨尺度的动态土壤水分含量和静态地形变量之间关系的时间依赖性的深刻的定量证据。

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  • 来源
    《Water resources research》 |2010年第10期|p.W10526.1-W10526.17|共17页
  • 作者单位

    Chaire de Recherche du Canada en Dynamique Fluviale, Departement de Geographie, Universite de Montreal, C.P. 6128, Montreal, QC H3C 3J7, Canada;

    Chaire de Recherche du Canada en Dynamique Fluviale, Departement de Geographie, Universite de Montreal, C.P. 6128, Montreal, QC H3C 3J7, Canada;

    Departement de Sciences Biologiques, Universite de Montreal, C.P. 6128, Succursale Centre-ville, Montreal, QC H3C 3J7, Canada;

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