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首页> 外文期刊>Journal of Hydrology: Regional Studies >Covariability of climate and streamflow in the Upper Rio Grande from interannual to interdecadal timescales
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Covariability of climate and streamflow in the Upper Rio Grande from interannual to interdecadal timescales

机译:年际到年代际时间尺度上里约格兰德州气候和水流的协变性

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Highlights ? A significant amount of streamflow variance cannot be fully explained by SST. ? Interdecadal SST-streamflow teleconnections are stronger than interannual ones. ? Highest flow years are clustered during positive phases of the PDO. ? A variety of atmospheric configurations are found to precede the highest flow years. Abstract Study region The Upper Rio Grande (URG) flows from its headwaters in Colorado, U.S., and provides an important source of water to millions of people in the U.S. states of Colorado, New Mexico, Texas, and also Mexico. Study focus We reassess the explanatory power of the relationship of sea surface temperatures (SST) on URG streamflow variability on interannual to interdecadal timescales. We find a significant amount of the variance of spring-summer URG streamflow cannot be fully explained by SST. New hydrological insights We find that the interdecadal teleconnection between SST and streamflow is more clear than on interannual timescales. The highest ranked years tend to be clustered during positive phases of the Pacific Decadal Oscillation (PDO). During the periods of decadal high flow (1900–1920, and 1979–1995), Pacific SST resembles a positive PDO pattern and the Atlantic a negative Atlantic Multidecadal Oscillation (AMO) pattern; an interbasin pattern shown in prior studies to be conducive to high precipitation and streamflow. To account for the part of streamflow variance not explained by SST, we analyze atmospheric Reanalysis data for the months preceding the highest spring-summer streamflow events. A variety of atmospheric configurations are found to precede the highest flow years through anomalous moisture convergence. This lack of consistency suggests that, on interannual timescales, weather and not climate can dominate the generation of high streamflow events.
机译:强调 ? SST无法完全解释大量流量变化。 ?年代际SST-streamflow远程连接要强于年际。 ?最高流量年份在PDO的积极阶段聚集。 ?在最高流量年份之前,已发现各种大气构造。摘要研究区域上里奥格兰德河(URG)来自美国科罗拉多州的上游水源,为美国科罗拉多州,新墨西哥州,德克萨斯州以及墨西哥的数百万人提供了重要的水源。研究重点我们重新评估海表温度(SST)对年际到年代际尺度上URG流量变化的关系的解释力。我们发现SST无法完全解释春夏季URG流量的大量变化。新的水文见解我们发现,海表温度和水流之间的年代际遥相关要比年际时间尺度更清晰。排名最高的年份往往在太平洋年代际振荡(PDO)的积极阶段聚集。在年代际高流量时期(1900-1920年和1979-1995年),太平洋海表温度表现为正PDO模式,而大西洋则表现为负大西洋多年代际振荡(AMO)模式。先前研究显示的盆地间格局有利于高降水和径流。为了解释SST无法解释的部分流量变化,我们分析了春季和夏季流量最高事件之前几个月的大气再分析数据。人们发现,由于异常的水分汇聚,各种大气构造在最高流量年份之前。这种缺乏一致性的现象表明,在每年的时间尺度上,天气而不是气候可以主导高流量事件的产生。

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