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河源网络中径流持久性的动态变化:流域尺度模型模拟的见解

Dynamics of streamflow permanence in a headwater network: Insights from catchment-scale model simulations.

作者信息

Mahoney D T, Christensen J R, Golden H E, Lane C R, Evenson G R, White E, Fritz K, D'Amico E, Barton C, Williamson T, Sena K, Agouridis C

机构信息

Department of Civil and Environmental Engineering, University of Louisville, Louisville, KY.

U.S. Environmental Protection Agency, Office of Research and Development, Center for Environmental Measurement and Modeling, Cincinnati, OH.

出版信息

J Hydrol (Amst). 2023 May 1;620(A). doi: 10.1016/j.jhydrol.2023.129422.

Abstract

The hillslope and channel dynamics that govern streamflow permanence in headwater systems have important implications for ecosystem functioning and downstream water quality. Recent advancements in process-based, semi-distributed hydrologic models that build upon empirical studies of streamflow permanence in well-monitored headwater catchments show promise for characterizing the dynamics of streamflow permanence in headwater systems. However, few process-based models consider the continuum of hillslope-stream network connectivity as a control on streamflow permanence in headwater systems. The objective of this study was to expand a process-based, catchment-scale hydrologic model to better understand the spatiotemporal dynamics of headwater streamflow permanence and to identify controls of streamflow expansion and contraction in a headwater network. Further, we aimed to develop an approach that enhanced the fidelity of model simulations, yet required little additional data, with the intent that the model might be later transferred to catchments with limited long-term and spatially explicit measurements. This approach facilitated network-scale estimates of the controls of streamflow expansion and contraction, albeit with higher degrees of uncertainty in individual reaches due to data constraints. Our model simulated that streamflow permanence was highly dynamic in first-order reaches with steep slopes and variable contributing areas. The simulated stream network length ranged from nearly 98±2% of the geomorphic channel extent during wet periods to nearly 50±10% during dry periods. The model identified a discharge threshold of approximately 1 mm d-1, above which the rate of streamflow expansion decreases by nearly an order of magnitude, indicating a lack of sensitivity of streamflow expansion to hydrologic forcing during high-flow periods. Overall, we demonstrate that process-based, catchment-scale models offer important insights on the controls of streamflow permanence, despite uncertainties and limitations of the model. We encourage researchers to increase data collection efforts and develop benchmarks to better evaluate such models.

摘要

控制源头水系径流持续性的山坡和河道动力学对生态系统功能及下游水质具有重要意义。基于过程的半分布式水文模型在对监测良好的源头集水区径流持续性进行实证研究的基础上取得了新进展,有望描绘源头水系径流持续性的动态变化。然而,很少有基于过程的模型将山坡 - 溪流网络连通性的连续体视为控制源头水系径流持续性的因素。本研究的目的是扩展一个基于过程的流域尺度水文模型,以更好地理解源头径流持续性的时空动态,并确定源头网络中径流扩张和收缩的控制因素。此外,我们旨在开发一种方法,提高模型模拟的逼真度,同时只需很少的额外数据,以便该模型日后可应用于长期和空间明确测量数据有限的集水区。尽管由于数据限制,各河段的不确定性较高,但这种方法有助于对径流扩张和收缩的控制因素进行网络尺度的估计。我们的模型模拟结果表明,在坡度陡峭且汇水面积可变的一级河段,径流持续性具有高度动态性。模拟的溪流网络长度在湿润期接近地貌河道范围的98±2%,在干旱期则接近50±10%。该模型确定了一个约1毫米/天的流量阈值,高于此阈值,径流扩张速率下降近一个数量级,这表明在高流量期径流扩张对水文强迫缺乏敏感性。总体而言,我们证明,尽管模型存在不确定性和局限性,但基于过程的流域尺度模型为径流持续性的控制因素提供了重要见解。我们鼓励研究人员加大数据收集力度,并制定基准以更好地评估此类模型。

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