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Lateral Circulation in Well-Mixed and Stratified Estuarine Flows with Curvature

机译:曲率混合的分层流中的横向循环

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摘要

A field experiment was conducted to examine stratified and unstratified curvature-generated lateral circulation and momentum balances in an estuarine tidal channel. Conductivity, temperature, depth, and current profiler data were collected vertically and laterally across the channel at a sharp bend over a fortnightly period to measure the terms of the lateral momentum budget. Well-mixed conditions allow the development of classic two-layer helical flow around a bend. Stratification strengthens curvature-induced lateral circulation, but the development of a lateral baroclinic pressure gradient opposes the resultant motions. The spatial and temporal response of this baroclinic pressure gradient is different than centrifugal acceleration, producing a three-layer profile. As the baroclinic term becomes stronger (or as centrifugal acceleration disappears as the flow exits the bend), two-layer flow with the opposite direction from curvature occurs. In both stratified and well-mixed conditions, downstream adjustment of lateral circulation (nonlinear advective acceleration) is of leading order in the lateral momentum budget; the depth-averaged term adjusts the streamline direction, while vertical deviations from the depth average account for changes in lateral circulation. The asymmetry of forcing mechanisms on flood and ebb, because of variations in stratification and strength of tidal flow, can strongly affect net lateral transport and generation of residual currents in regions of curvature.
机译:进行了野外试验,以检查河口潮汐通道中分层和未分层的曲率产生的侧向环流和动量平衡。在每两周一次急剧弯曲的情况下,在通道上垂直和横向收集电导率,温度,深度和电流剖面数据,以测量横向动量预算的项。充分混合的条件允许围绕弯头形成经典的两层螺旋流。分层增强了曲率引起的横向循环,但是横向斜压梯度的发展与由此产生的运动相反。该斜压梯度的时空响应不同于离心加速度,产生了三层轮廓。随着斜压项变得更强(或者随着流离开弯头而离心加速度消失),将发生与曲率方向相反的两层流。在分层和混合条件下,横向循环的下游调节(非线性平流加速度)在横向动量预算中处于领先地位;深度平均值项可调整流线方向,而与深度平均值的垂直偏差可解释横向循环的变化。由于分层和潮汐流强度的变化,洪水和退潮的强迫机制的不对称性会强烈影响净侧向传输和曲率区域中剩余电流的产生。

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  • 来源
    《Journal of Physical Oceanography》 |2009年第4期|831-851|共21页
  • 作者单位

    Nicholas Nidzieko, Environmental Fluid Mechanics Laboratory, Stanford University, Stanford, CA 94305;

    Nicholas Nidzieko, Environmental Fluid Mechanics Laboratory, Stanford University, Stanford, CA 94305;

    Nicholas Nidzieko, Environmental Fluid Mechanics Laboratory, Stanford University, Stanford, CA 94305;

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