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首页> 外文期刊>Journal of geophysical research. Earth Surface: JGR >Exploring the impacts of multiple tidal constituents and varying river flow on long-term, large-scale estuarine morphodynamics by means of a 1-D model
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Exploring the impacts of multiple tidal constituents and varying river flow on long-term, large-scale estuarine morphodynamics by means of a 1-D model

机译:通过一维模型探索多种潮汐成分和变化的河流流量对长期大规模河口形态动力学的影响

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Tidal asymmetry is an important mechanism generating tidal residual sediment transport (TRST) in tidal environments. So far, it is known that a number of tidal interactions (e.g., M-2-M-4 and M-2-O-1-K-1) can induce tidal asymmetry and associated TRST; however, their variability and morphodynamic impacts are insufficiently explored. Inspired by the river and tidal forcing conditions in the Yangtze River Estuary, we explore the morphodynamic development of a 560 km long estuary under the boundary forcing conditions of varyingly combined tidal constituents and river discharges using a schematized 1-D morphodynamic model for long-term (millennial) simulations. We then employ an analytical scheme which integrates sediment transport as a function of flow velocities to decompose the contribution of different tidal interactions on TRST and to explain how the river and tidal interactions control TRST and associated morphodynamics. Model results display varying equilibrium bed profiles. Analytical results suggest that (1) a series of tidal interactions creates multiple tidal asymmetries and associated TRST, (2) river flow modulates tidal asymmetry nonlinearly in space, and (3) more tidal constituents at the sea boundary persistently enhance the seaward TRST through river-tide interactions. It is the combined effects of multiple tidal asymmetries and river-tide interactions that determine the net TRST and consequent morphodynamic development. It thus suggests that tidal harmonics of significant amplitudes need to be considered properly as boundary conditions for long-term, large-scale morphodynamic modeling.
机译:潮汐不对称性是在潮汐环境中产生潮汐残留沉积物运输(TRST)的重要机制。到目前为止,已知许多潮汐相互作用(例如,M-2-M-4和M-2-O-1-K-1)可以引起潮汐不对称和相关的TRST。但是,他们的可变性和形态动力学影响尚未充分探讨。受长江河口的河水和潮汐强迫条件的启发,我们使用模式化的一维形态动力学模型,长期研究了560 km长的河口在不同潮汐成分和河流流量的边界强迫条件下的形态动力学发展。 (千禧一代)模拟。然后,我们采用一种分析方案,该方案将泥沙输运与流速的函数相结合,以分解不同潮汐相互作用对TRST的贡献,并解释河流和潮汐相互作用如何控制TRST和相关的形态动力学。模型结果显示变化的平衡床分布。分析结果表明:(1)一系列潮汐相互作用产生了多个潮汐不对称性和相关的TRST;(2)河流流量在空间中非线性地调节了潮汐不对称性;(3)海边界更多的潮汐成分持续增强了通过河流的向海TRST潮流互动。多个潮汐不对称性和河水相互作用共同作用的结果决定了净TRST和随之而来的形态动力学发展。因此,这表明,对于长期的大规模形态动力学建模,需要适当考虑较大幅度的潮汐谐波作为边界条件。

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