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Analytical approach for determining the mean water level profile in an estuary with substantial fresh water discharge

机译:确定大量淡水排放的河口平均水位曲线的分析方法

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The mean water level in estuaries rises in the landward direction due to a combination of the density gradient, the tidal asymmetry, and the backwater effect. This phenomenon is more prominent under an increase of the fresh water discharge, which strongly intensifies both the tidal asymmetry and the backwater effect. However, the interactions between tide and river flow and their individual contributions to the rise of the mean water level along the estuary are not yet completely understood. In this study, we adopt an analytical approach to describe the tidal wave propagation under the influence of substantial fresh water discharge, where the analytical solutions are obtained by solving a set of four implicit equations for the tidal damping, the velocity amplitude, the wave celerity, and the phase lag. The analytical model is used to quantify the contributions made by tide, river, and tide-river interaction to the water level slope along the estuary, which sheds new light on the generation of backwater due to tide-river interaction. Subsequently, the method is applied to the Yangtze estuary under a wide range of river discharge conditions where the influence of both tidal amplitude and fresh water discharge on the longitudinal variation of the mean tidal water level is explored. Analytical model results show that in the tide-dominated region the mean water level is mainly controlled by the tide-river interaction, while it is primarily determined by the river flow in the river-dominated region, which is in agreement with previous studies. Interestingly, we demonstrate that the effect of the tide alone is most important in the transitional zone, where the ratio of velocity amplitude to river flow velocity approaches unity. This has to do with the fact that the contribution of tidal flow, river flow, and tide-river interaction to the residual water level slope are all proportional to the square of the velocity scale. Finally, we show that, in combination with extreme-value theory (e.g. generalized extreme-value theory), the method may be used to obtain a first-order estimation of the frequency of extreme water levels relevant for water management and flood control. By presenting these analytical relations, we provide direct insight into the interaction between tide and river flow, which will be useful for the study of other estuaries that experience substantial river discharge in a tidal region.
机译:由于密度梯度,潮汐不对称和回水效应的共同作用,河口的平均水位沿陆上方向上升。随着淡水排放量的增加,这种现象更加突出,这会极大地加剧潮汐的不对称性和死水的影响。然而,潮汐和河流流量之间的相互作用以及它们对沿河口平均水位上升的贡献尚不完全清楚。在这项研究中,我们采用一种分析方法来描述在大量淡水排放的影响下的潮汐传播,其中解析解是通过求解一组四个潮汐阻尼,速度振幅,波速的隐式方程而获得的和相位滞后。该分析模型用于量化潮汐,河流和潮汐河流相互作用对沿河口水位坡度的贡献,这为潮汐河流相互作用产生的回水提供了新的思路。随后,该方法在大范围的河流排放条件下应用于长江口,探讨了潮汐幅值和淡水排放量对平均潮汐水位纵向变化的影响。分析模型结果表明,在潮汐控制区,平均水位主要受潮汐—河流相互作用的控制,而主要由潮汐河床的河流流量决定,这与以前的研究一致。有趣的是,我们证明了潮汐的影响在过渡带最为重要,在过渡带,速度幅值与河流流速的比值趋于一致。这与以下事实有关:潮汐流量,河流流量和潮汐河相互作用对剩余水位坡度的贡献均与速度标度的平方成正比。最后,我们表明,结合极值理论(例如广义极值理论),该方法可用于获得与水管理和防洪有关的极水位频率的一阶估计。通过呈现这些分析关系,我们可以直接了解潮汐与河流流量之间的相互作用,这对于研究潮汐区域中河流大量流出的其他河口将很有用。

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