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Spatiotemporal variation of river temperature as a predictor of groundwater/surface-water interactions in an arid watershed in China

  • Yingying Yao
  • , Xiang Huang
  • , Jie Liu
  • , Chunmiao Zheng
  • , Xiaobo He
  • , Chuankun Liu
  • Peking University
  • University of Alabama
  • CAS - Cold and Arid Regions Environmental and Engineering Research Institute

科研成果: 期刊稿件文章同行评审

19 引用 (Scopus)

摘要

Interactions between groundwater and surface water in arid regions are complex, and recharge–discharge processes are often influenced by the hydrological regime, climate and geology. Traditional methods such as hydraulic gradient measuring by piezometers, differential discharge gauging and conservative tracer experiments, are often inadequate to capture the spatial and temporal variation of exchange rates. In this study, the distribution and the size of the overall groundwater inflow zone (GIZ) and the hyporheic inflow zone (HIZ) in the middle Heihe River Basin, northwest China, are characterized, and the relative inflow flux is estimated by high-resolution temperature measurements. Distributed temperature sensing (DTS) was used to measure the mixing temperatures of a 5-km reach of streambed with a spatial resolution of 0.5 m. The sampling interval was 0.25 m, and the temporal interval was 15 and 10 min at Pingchuan and Banqiao experimental sites, respectively. Two separate measurement periods in Pingchuan (Ping1, Ping2) captured different meteorological and stream-flow conditions. The results show that the number and the size range of the individual HIZs are greater than those of GIZs. Groundwater upwelling (GIZ) causes a larger decrease in river-water temperature with less inflow flux compared with the HIZ. The distribution pattern of HIZs and GIZs is influenced by the hydrodynamics of the river and the hydraulic permeability of the riverbed. High-resolution temperature variation based on DTS is an effective predictor of distributed inflows from groundwater upwelling and hyporheic exchange in an arid region.

源语言英语
页(从-至)999-1007
页数9
期刊Hydrogeology Journal
23
5
DOI
出版状态已出版 - 24 8月 2015
已对外发布

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