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首页> 外文期刊>Journal of Hydrology >Scaling and physiographic controls on streamflow behaviour on the Precambrian Shield, south-central Ontario
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Scaling and physiographic controls on streamflow behaviour on the Precambrian Shield, south-central Ontario

机译:在安大略省中南部的前寒武纪盾构上对径流行为的缩放和生理控制

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Relationships explaining streamflow behaviour in terms of drainage basin physiography greatly assist efforts to extrapolate streamflow metrics from gauged to ungauged basins in the same landscape. The Dorset Environmental Science Centre (DESC) has monitored streamflow from 22 small basins (3.4-190.5 ha) on the Precambrian Shield in south-central Ontario, in some cases since 1976. The basins exhibit regional coherence in their interannual response to precipitation; however, there is often a poor correlation between streamflow metrics from basins separated by as little as 1 km. This study assesses whether inter-basin variations in such metrics can be explained in terms of basin scale and physiography. Several characteristics (annual maximum, minimum and average flow) exhibited simple scaling with basin area, while magnitude, range and timing of annual maximum daily runoff showed scaling behaviour consistent with the Representative Elementary Area (REA) concept. This REA behaviour is partly attributed to convergence of fractional coverage of the two dominant and hydrologically-contrasting land cover types in the DESC region with increasing basin size. Three Principal Components (PCs) explained 82.4% of the variation among basin physiographic properties, and several runoff metrics (magnitude and timing of annual minimum daily runoff, mean number of days per year with 0 streamflow) exhibited significant relationships with one or more PC. Significant relationships were obtained between basin quickflow (QF) production and the PCs on a seasonal and annual basis, almost all of which were superior to simple area-based relationships. Basin physiography influenced QF generation via its control on slope runoff, water storage and hydrologic connectivity; however, this role was minimized during Spring when QF production in response to large rain-on-snow events was relatively uniform across the DESC basins. The PC-based relationships and inter-seasonal changes in their form were consistent with previous research conducted at point, slope and basin scales in the DESC region, and perceptions of key hydrological processes in these small basins may not have been as readily obtained from scaling studies using streamflow from larger basins. This process understanding provides insights into scaling behaviour beyond those derived from simple scaling and REA analyses. The physiography of the study area is representative of large portions of the Precambrian Shield, such that basin streamflow behaviour could potentially be extended across much of south-central Ontario. This would assist predictions of streamflow conditions at ungauged locations, development and testing of hydrological models for this landscape, and interpretation of inter-basin and intra-annual differences in hydrochemical behaviour on the southern Precambrian Shield.
机译:用流域生理学解释流场行为的关系极大地有助于努力推断同一景观中从测量流域到未流域流域的流向度量。自1976年以来,多塞特郡环境科学中心(DESC)监测了安大略省中南部的前寒武纪盾构上22个小盆地(3.4-190.5公顷)的水流。这些盆地在对降水的年际响应中表现出区域一致性。然而,相距仅1 km的盆地的流量指标之间往往存在较弱的相关性。这项研究评估是否可以用盆地规模和生理学来解释这些度量标准的流域间差异。几个特征(年最大流量,最小流量和平均流量)显示出随流域面积的简单缩放,而年最大日径流量的大小,范围和时间则显示出与代表性基本面积(REA)概念一致的缩放行为。这种REA行为部分归因于DESC区域中两种主要和水文不同的土地覆盖类型的覆盖率随流域规模的增大而趋同。三个主要成分(PC)解释了82.4%的盆地生理特性之间的变化,并且一些径流指标(年度最小日径流量的大小和时间,每年零流量的平均天数)与一个或多个PC表现出显着的关系。流域快速流量(QF)产量与PC之间在季节和年度之间都获得了重要的关系,几乎所有关系都优于简单的基于区域的关系。盆地生理学通过控制边坡径流,蓄水和水文连通性影响了量子效率的产生;但是,在春季期间,由于DESC盆地中响应于大雪雨事件的QF产量相对均匀,这一作用被最小化了。基于PC的关系及其形式的季节间变化与先前在DESC地区的点,坡度和盆地尺度上进行的研究一致,并且对这些小盆地关键水文过程的认识可能不容易从尺度上获得。利用较大盆地的水流进行研究。对过程的了解不仅可以提供简单缩放和REA分析得出的结果,还可以提供对缩放行为的深入了解。研究区域的地貌代表了前寒武纪盾构的大部分,因此盆地的水流行为可能会扩展到安大略省中南部的大部分地区。这将有助于预测未开挖位置的水流状况,开发和测试该景观的水文模型,并解释前寒武纪南部盾构的盆地间和年内水化学行为差异。

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