流域尺度径流效率对气候变率的响应

IF 3.2 3区 地球科学 Q1 Environmental Science
Christian M. Erikson, Carl E. Renshaw, Evan N. Dethier, Francis J. Magilligan
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引用次数: 0

摘要

在流域内转化为河流流量的降水部分,称为径流效率,可能随着气候变化而变化。已知径流效率在某些流域对温度敏感,但在许多其他流域对温度敏感性没有量化。我们利用美国大陆和加拿大的942个流域确定了径流效率对温度敏感的地区,这些地区受人为活动的影响最小。利用历史流量和气候记录的逐步回归显示,在16个水文相似的水文区域中,有10个区域的径流效率对温度敏感,这增加了预计将经历温度驱动的水资源压力的地点的数量,特别是在北美大陆内陆。所有水区的径流效率对降水都表现出敏感性,但在湿润年份,径流效率暂时下降,可能反映了地下水储存量的增加。径流效率暂时下降后,次年又会增加,这可能是由于地下水的释放。这一效应表明,径流效率的变化有助于稳定流域,使得随着气候变化进入干旱和离开干旱变得更加困难。后一种效应可以部分解释气象干旱结束后水文干旱持续的观测结果。了解区域温度敏感性和降水的多年效应将提高径流效率的预测能力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Watershed-Scale Runoff Efficiency Response to Climate Variability

The fraction of precipitation converted to stream discharge within a watershed, termed as runoff efficiency, may shift as climate changes. Runoff efficiency is known to be temperature-sensitive in some watersheds, but temperature sensitivity is unquantified in many other watersheds. We identify regions where runoff efficiency is temperature-sensitive using 942 watersheds, minimally influenced by anthropogenic activity, across the continental United States and Canada. Stepwise regression using historical discharge and climate records shows that runoff efficiency in 10 of 16 hydrologically similar hydro-regions is sensitive to temperature, expanding the number of locations expected to experience temperature-driven water stress, particularly in the North American continental interior. Runoff efficiency in all hydro-regions demonstrates sensitivity to precipitation, but during wet years, runoff efficiency temporarily decreases, likely reflecting increasing groundwater storage. The temporary decrease in runoff efficiency is followed by an increase in the following year, likely due to the release of stored groundwater. This effect suggests changes in runoff efficiency help to stabilise watersheds, making it more difficult to both enter and leave drought as climate changes. The latter effect may partially explain observations of hydrologic drought persistence after meteorological drought ends. Understanding regional temperature sensitivity and the multiple-year effect of precipitation will improve the ability to forecast runoff efficiency.

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来源期刊
Hydrological Processes
Hydrological Processes 环境科学-水资源
CiteScore
6.00
自引率
12.50%
发文量
313
审稿时长
2-4 weeks
期刊介绍: Hydrological Processes is an international journal that publishes original scientific papers advancing understanding of the mechanisms underlying the movement and storage of water in the environment, and the interaction of water with geological, biogeochemical, atmospheric and ecological systems. Not all papers related to water resources are appropriate for submission to this journal; rather we seek papers that clearly articulate the role(s) of hydrological processes.
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