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On the propagation of diel signals in river networks using analytic solutions of flow equations

机译:流方程解析解在河网中狄尔信号的传播

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Several authors have reported diel oscillations in streamflow records and have hypothesized that these oscillations are linked to evapotranspiration cycles in the watershed. The timing of oscillations in rivers, however, lags behind those of temperature and evapotranspiration in hillslopes. Two hypotheses have been put forth to explain the magnitude and timing of diel streamflow oscillations during low-flow conditions. The first suggests that delays between the peaks and troughs of streamflow and daily evapotranspiration are due to processes occurring in the soil as water moves toward the channels in the river network. The second posits that they are due to the propagation of the signal through the channels as water makes its way to the outlet of the basin. In this paper, we design and implement a theoretical model to test these hypotheses. We impose a baseflow signal entering the river network and use a linear transport equation to represent flow along the network. We develop analytic streamflow solutions for the case of uniform velocities in space over all river links. We then use our analytic solution to simulate streamflows along a self-similar river network for different flow velocities. Our results show that the amplitude and time delay of the streamflow solution are heavily influenced by transport in the river network. Moreover, our equations show that the geomorphology and topology of the river network play important roles in determining how amplitude and signal delay are reflected in streamflow signals. Finally, we have tested our theoretical formulation in the Dry Creek Experimental Watershed, where oscillations are clearly observed in streamflow records. We find that our solution produces streamflow values and fluctuations that are similar to those observed in the summer of 2011.
机译:几位作者在水流记录中报告了狄尔振荡,并假设这些振荡与流域的蒸散周期有关。但是,河流的振荡时间要比山坡的温度和蒸散时间要滞后。提出了两个假设来解释低流量条件下diel流的振荡的幅度和时间。第一个建议是,在水流向河网中的河道移动时,在土壤中发生的过程是造成水流高峰和低谷与每日蒸散之间的延迟。第二个结论是,这是由于当水进入水盆出口时信号通过通道传播的结果。在本文中,我们设计并实现了一个理论模型来检验这些假设。我们强加了进入河流网络的基流信号,并使用线性传输方程来表示沿网络的流量。我们针对所有河流之间的空间内统一速度的情况,开发了解析流解决方案。然后,我们使用解析解决方案来模拟沿着自相似河网的不同流速的水流。我们的结果表明,水流解决方案的幅度和时间延迟受到河网中运输的严重影响。此外,我们的方程表明,河网的地貌和拓扑在确定流量信号中如何反映幅度和信号延迟方面起着重要作用。最后,我们在Dry Creek实验流域中测试了理论公式,在流量记录中清楚地观察到振荡。我们发现,我们的解决方案产生的流量值和波动与2011年夏季观察到的相似。

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