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Evolution of the Velocity Structure in the Diurnal Warm Layer

机译:昼间暖层速度结构的演变

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摘要

The daily formation of near-surface ocean stratification caused by penetrating solar radiation modifies heat fluxes through the air-sea interface, turbulence dissipation in the mixed layer, and the vertical profile of lateral transport. The transport is altered because momentum from wind is trapped in a thin near-surface layer, the diurnal warm layer. We investigate the dynamics of this layer, with particular attention to the vertical shear of horizontal velocity. We first develop a quantitative link between the near-surface shear components that relates the crosswind component to the inertial turning of the along-wind component. Three days of high-resolution velocity observations confirm this relation. Clear colocation of shear and stratification with Richardson numbers near 0.25 indicate marginal instability. Idealized numerical modeling is then invoked to extrapolate below the observed wind speeds. This modeling, together with a simple energetic scaling analysis, provides a rule of thumb that the diurnal shear evolves differently above and below a 2 m s(-1) wind speed, with limited sensitivity of this threshold to latitude and mean net surface heat flux. Only above this wind speed is the energy input sufficient to overcome the stabilizing buoyancy flux and thereby induce marginal instability. The differing shear regimes explain differences in the timing and magnitude of diurnal sea surface temperature anomalies.
机译:由穿透太阳辐射引起的近地表海洋分层的每日形成,改变了通过海气界面的热通量,混合层中的湍流消散以及横向运输的垂直剖面。由于风的动量被困在薄的近地表层(昼夜暖层)中,因此传输方式发生了变化。我们研究了该层的动力学,特别注意水平速度的垂直剪切。我们首先建立近地表剪切分量之间的定量联系,该联系将侧风分量与顺风分量的惯性转向相关。三天的高分辨率速度观测证实了这一关系。理查森数接近0.25时,剪切和分层的清晰共置指示边缘不稳定。然后调用理想化的数值模型来推断低于观测到的风速。该模型与简单的能量缩放分析一起提供了一条经验法则,即日切变在2 m s(-1)风速以上和以下变化不同,并且该阈值对纬度和平均净表面热通量的敏感性有限。仅在该风速以上,能量输入才足以克服稳定的浮力通量,从而引起边际不稳定。不同的剪切方式解释了昼夜海表温度异常的时间和大小的差异。

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