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Regionalization of patterns of flow intermittence from gauging station records

机译:计量站记录的流量间歇性模式区域化

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Understanding large-scale patterns in flow intermittence is important for effective river management. The duration and frequency of zero-flow periods are associated with the ecological characteristics of rivers and have important implications for water resources management. We used daily flow records from 628 gauging stations on rivers with minimally modified flows distributed throughout France to predict regional patterns of flow intermittence. For each station we calculated two annual times series describing flow intermittence; the frequency of zero-flow periods (consecutive days of zero flow) in each year of record (FREQ; yr-1), and the total number of zero-flow days in each year of record (DUR; days). These time series were used to calculate two indices for each station, the mean annual frequency of zero-flow periods (mFREQ; yr-1), and the mean duration of zero-flow periods (mDUR; days). Approximately 20% of stations had recorded at least one zero-flow period in their record. Dissimilarities between pairs of gauges calculated from the annual times series (FREQ and DUR) and geographic distances were weakly correlated, indicating that there was little spatial synchronization of zero flow. A flow-regime classification for the gauging stations discriminated intermittent and perennial stations, and an intermittence classification grouped intermittent stations into three classes based on the values of mFREQ and mDUR. We used random forest (RF) models to relate the flow-regime and intermittence classifications to several environmental characteristics of the gauging station catchments. The RF model of the flow-regime classification had a cross-validated Cohen's kappa of 0.47, indicating fair performance and the intermittence classification had poor performance (cross-validated Cohen's kappa of 0.35). Both classification models identified significant environment-intermittence associations, in particular with regional-scale climate patterns and also catchment area, shape and slope. However, we suggest that the fair-to-poor performance of the classification models is because intermittence is also controlled by processes operating at scales smaller catchments, such as groundwater-table fluctuations and seepage through permeable channels. We suggest that high spatial heterogeneity in these small-scale processes partly explains the low spatial synchronization of zero flows. While 20% of gauges were classified as intermittent, the flow-regime model predicted 39% of all river segments to be intermittent, indicating that the gauging station network under-represents intermittent river segments in France. Predictions of regional patterns in flow intermittence provide useful information for applications including environmental flow setting, estimating assimilative capacity for contaminants, designing bio-monitoring programs and making preliminary predictions of the effects of climate change on flow intermittence.
机译:了解流量间歇性的大规模模式对于有效的河流管理非常重要。零流量时期的持续时间和频率与河流的生态特征有关,对水资源管理具有重要意义。我们使用来自628个河流测量站的每日流量记录,对流量分布进行了最小修改,分布在整个法国,以预测流量间歇性的区域模式。对于每个站点,我们计算了两个描述流量间歇性的年度时间序列;记录的每一年中的零流量天数(连续的零流量天数)的频率(FREQ; yr-1),以及记录的每一年中的零流量天数的总数(DUR;天)。这些时间序列用于计算每个站点的两个指数,零流量周期的年平均频率(mFREQ; yr-1),以及零流量周期的平均持续时间(mDUR;天)。大约20%的电台在其记录中记录了至少一个零流量时段。从年时间序列(FREQ和DUR)计算出的两对仪表之间的差异与地理距离之间的相关性很弱,这表明零流量几乎没有空间同步。测量站的流态分类区分了间歇性站和多年生站,而间歇性分类则根据mFREQ和mDUR的值将间歇性站分为三类。我们使用随机森林(RF)模型将流量状况和间歇性分类与测量站集水区的几种环境特征相关联。流域分类的RF模型的交叉验证的Cohenκ为0.47,表明性能良好,间歇性分类的性能较差(交叉验证的Cohenκ为0.35)。两种分类模型都确定了重要的环境-断续联系,特别是与区域尺度的气候模式以及集水区,形状和坡度有关。但是,我们认为分类模型的表现是“差”的,这是因为间歇性还受规模较小的流域的过程控制,例如地下水位波动和通过可渗透通道的渗漏。我们建议这些小规模过程中的高空间异质性部分地解释了零流量的低空间同步。尽管20%的量表被归类为间歇性的,但流域模型预测所有河流段中的39%是间歇性的,这表明在法国,计量站网络不足以代表间歇性河段。流动间歇性区域格局的预测可为应用提供有用的信息,包括环境流动设定,估算污染物的同化能力,设计生物监测程序以及对气候变化对流动间歇性的影响进行初步预测。

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