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首页> 外文期刊>Journal of Geophysical Research, C. Oceans: JGR >Role of straining and advection in the intratidal evolution of stratification, vertical mixing, and longitudinal dispersion of a shallow, macrotidal, salt wedge estuary
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Role of straining and advection in the intratidal evolution of stratification, vertical mixing, and longitudinal dispersion of a shallow, macrotidal, salt wedge estuary

机译:应变和对流在浅层,巨潮,盐楔河口的分层,垂直混合和纵向扩散的潮汐内演化中的作用

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A month of flow observations in the Snohomish River Estuary reveals the complex intratidal and fortnightly stratification, mixing, and dispersion dynamics in this macrotidal, shallow, salt wedge estuary system. Both salt wedge propagation and concomitant straining of the density field dominate temporal and spatial variations in stratification leading to intratidal variability of shear and mixing that differs in important ways from observations in partially mixed estuaries. Bottom-generated turbulent kinetic energy production is enhanced during spring tides and acts in concert with straining to counteract advection and minimize vertical stratification during the spring flood tides. This bottom-generated mixing contributes to a buoyancy flux near the top of a well-mixed layer during strong flood tides. During strong ebb tides, interfacial shear production and buoyancy flux occur along the sharp straining-enhanced interface just before the system becomes well mixed. Longitudinal dispersion is less sensitive to the springeap cycle yet exhibits strong intratidal variability. Reduced longitudinal dispersion is observed during the large floods relative to the rest of the tidal cycle, behavior we attribute to a lack of vertical shear. Overall, ebb tide advection and straining enhance stratification and longitudinal dispersion and allow for interfacial mixing. Intratidal variability, which varies on the springeap scale, is a dominant feature of this estuary, suggesting the importance of intratidal processes and tidally varying mixing coefficients in similar strongly stratified, strongly forced estuaries.
机译:在Snohomish河河口进行的一个月的水流观测显示,在这个大潮汐,浅层,盐楔河口系统中,潮汐内和每两周有复杂的分层,混合和扩散动态。盐楔的传播和密度场的伴随应变都主导着分层的时空变化,从而导致潮汐带内剪切和混合的变化,这与在部分混合河口的观测有重要的不同。在春季潮汐期间,底部产生的湍动能的产生得到增强,并且与应变协同作用以抵消平流并使春季潮汐期间的垂直分层最小化。在强洪潮期间,这种底部产生的混合作用会导致均匀混合层顶部附近的浮力通量。在强烈的退潮期间,在系统变得充分混合之前,会沿尖锐的应变增强界面发生界面剪切产生和浮力通量。纵向分散对弹簧/小睡周期不那么敏感,但表现出很强的潮内变化性。相对于其余的潮汐周期,在大洪水期间观察到纵向分散性降低,我们将其行为归因于缺乏垂直剪切力。总体而言,退潮对流和张紧增强了分层和纵向扩散,并允许界面混合。潮汐变化在春季/春季尺度上变化,是该河口的主要特征,表明潮汐过程的重要性和潮汐变化在相似的强分层,强强迫河口中的混合系数的重要性。

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