River–aquifer interactions enhancing evapotranspiration in a semiarid riparian zone: A modelling study

IF 3.2 3区 地球科学 Q1 Environmental Science Hydrological Processes Pub Date : 2024-07-08 DOI:10.1002/hyp.15230
Bowen Zhu, Maoyi Huang, Xingyuan Chen, Gautam Bisht, Pin Shuai, Xianhong Xie
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Abstract

The hydrologic flows across the river–aquifer interface play an important role in groundwater dynamics and biogeochemical reactions within the subsurface; however, little is known about the effects of river–aquifer interactions on land surface processes. In this study, we developed a fully coupled three-dimensional (3D) land surface and subsurface model at a high resolution (~1 km) that accounts for high-frequency hydrologic exchange flow conditions to investigate how river–aquifer interactions modulate surface water budgets in the Upper Columbia-Priest Rapids watershed, a typical semiarid watershed located in the northwestern United States where river stage fluctuates in response to reservoir releases changing. Our results show that the spatiotemporal dynamics of river–aquifer interactions are highly heterogeneous, driven mainly by river-stage fluctuations. Adding 6.64 × 106 m3 year−1 of water over the watershed from the river to groundwater owing to the lateral flow, river–aquifer interactions led to an increase in soil evaporation and transpiration supplied by higher soil moisture content, particularly in deeper subsurface. In a hypothetic future scenarios where a 5-m rise in river stage was assumed, the hydrologic flow exchange rates were intensified, resulting in higher surface water over the entire watershed. Overall, lateral flow induced by river–aquifer exchanges leads to an increase in evapotranspiration of ~75% in the historical period and of ~83% in the hypothetical future scenario. Our study demonstrates the potential of coupled model as an effective tool for understanding river–aquifer–land surface interactions, and indicates that river–aquifer interactions fundamentally alter the water balance of the riparian zone for the semiarid watershed and will likely become more frequent and intense in the future under the effects of climate change.

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河流与含水层之间的相互作用增强了半干旱河岸地带的蒸散作用:模拟研究
河流-含水层界面上的水文流在地下水动力学和地下生物地球化学反应中发挥着重要作用;然而,人们对河流-含水层相互作用对地表过程的影响知之甚少。在这项研究中,我们开发了一个高分辨率(约 1 千米)的完全耦合三维地表和地下模型,该模型考虑了高频水文交换流条件,以研究河流-蓄水层相互作用如何调节上哥伦比亚-普里斯特急流流域的地表水预算,该流域位于美国西北部,是一个典型的半干旱流域,河流水位随水库泄洪量变化而波动。我们的研究结果表明,河流-蓄水层相互作用的时空动态具有高度异质性,主要受河水水位波动的驱动。由于横向流动,流域内从河流到地下水的水量增加了 6.64 × 106 立方米/年-1,河流与含水层的相互作用导致土壤蒸发量和蒸腾量增加,土壤水分含量增加,尤其是在地下深层。在假设河流水位上升 5 米的未来情景中,水文流交换率增强,导致整个流域的地表水量增加。总体而言,河流-含水层交换引起的横向流动导致历史时期的蒸散量增加了约 75%,而在假设的未来情景中增加了约 83%。我们的研究证明了耦合模型作为了解河流-含水层-地表相互作用的有效工具的潜力,并表明河流-含水层相互作用从根本上改变了半干旱流域河岸带的水量平衡,在未来气候变化的影响下,这种作用可能会变得更加频繁和强烈。
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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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