将水体示踪模型纳入 WRF-Hydro,在水文模拟中描述侧向流的影响

IF 4.6 1区 地球科学 Q2 ENVIRONMENTAL SCIENCES Water Resources Research Pub Date : 2024-07-08 DOI:10.1029/2023wr034938
Huancui Hu, L. Ruby Leung, Francina Dominguez, David Gochis, Xingyuan Chen, Stephen Good, Aubrey Dugger, Laurel Larsen, Michael Barlage
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引用次数: 0

摘要

目前大多数陆地模型将陆地水文过程近似为一维垂直流,忽略了水从山脊到山谷的横向流动。这种横向流动在集水尺度上非常重要,对更精细尺度的陆地模型也至关重要。为了测试在下一代陆地模型中将横向流纳入水文过程三维表述的效果,我们在 WRF-Hydro 框架中集成了水示踪模型,以跟踪从降水到排放和蒸散的水流运动。这种水文示踪集成系统使我们能够确定侧向流影响 WRF-Hydro 中水流路径和过境时间的关键机制。通过比较两个截然不同的集水区有无横向流路径的建模实验,我们确定了横向流对降水事件水流过境时间的影响。结果表明,在水文连通性有限的情况下,侧向流通过减少(增加)事件水在山脊(山谷)的排水损失(积聚)和允许入渗-溢流再渗透来延长过境时间,而这在大多数陆地模型中都是缺失的。相反,在水文连通性较高的情况下,侧向流可以有效地加速向溪流泄水并缩短过境时间。然而,与同位素得出的估计值相比,模型大大低估了过境时间,这表明模型在表示水流路径和过境时间方面存在局限性。这项研究提供了一些见解,说明了有横向流表示和无横向流表示的陆地模型模拟的陆地水文存在根本差异。
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Integrating a Water Tracer Model Into WRF-Hydro for Characterizing the Effect of Lateral Flow in Hydrologic Simulations
Most current land models approximate terrestrial hydrological processes as one-dimensional vertical flow, neglecting lateral water movement from ridges to valleys. Such lateral flow is fundamental at catchment scales and becomes crucial for finer-scale land models. To test the effect of incorporating lateral flow toward three-dimensional representations of hydrological processes in the next generation land models, we integrate a water tracer model into the WRF-Hydro framework to track water movement from precipitation to discharge and evapotranspiration. This hydrologic-tracer integrated system allows us to identify the key mechanisms by which lateral flow affects the flow paths and transit times in WRF-Hydro. By comparing modeling experiments with and without lateral routing in two contrasting catchments, we determine the impacts of lateral flow on the transit times of precipitation event-water. Results show that with limited hydrologic connectivity, lateral flow extends the transit times by reducing (increasing) event-water drainage loss (accumulation) in ridges (valleys) and allowing reinfiltration of infiltration-excess flow, which is missing in most land models. On the contrary with high hydrologic connectivity, lateral flow can effectively accelerate the water release to streams and reduce the transit time. However, the transit times are substantially underestimated by the model compared with isotope-derived estimates, indicating model limitations in representing flow paths and transit times. This study provides some insights on the fundamental differences in terrestrial hydrology simulated by land models with and without lateral flow representation.
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来源期刊
Water Resources Research
Water Resources Research 环境科学-湖沼学
CiteScore
8.80
自引率
13.00%
发文量
599
审稿时长
3.5 months
期刊介绍: Water Resources Research (WRR) is an interdisciplinary journal that focuses on hydrology and water resources. It publishes original research in the natural and social sciences of water. It emphasizes the role of water in the Earth system, including physical, chemical, biological, and ecological processes in water resources research and management, including social, policy, and public health implications. It encompasses observational, experimental, theoretical, analytical, numerical, and data-driven approaches that advance the science of water and its management. Submissions are evaluated for their novelty, accuracy, significance, and broader implications of the findings.
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