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Ocean turbulence at meso and submesoscales: Connection between surface and interior dynamics

机译:中尺度和亚尺度的海洋湍流:表面和内部动力学之间的联系

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High resolution simulations of ocean turbulence with Rossby number of order one have revealed that upper layer dynamics significantly differs from the interior dynamics. As reported before, upper layer dynamics is characterized with shallow velocity spectrum corresponding to kinetic energy distributed over a spectral range from mesoscales to small scales. This dynamics is driven by small-scale frontogenesis related to surface density anomalies. Interior dynamics is characterized by steeper velocity spectrum and is driven by the potential vorticity anomalies set up by the interior baroclinic instability. Impact of the divergent motions related to surface frontogenesis leads to a warming of the upper layers, a cyclone dominance and a negative skewness of the isopycnal displacements. On the contrary, divergent motions in the interior lead to a cooling of the deeper layers, an anticylone dominance and a positive skewness of the isopycnal displacements. These different ageostrophic processes are consistent with an SQG regime extended to Rossby number of order one on one hand and an interior QG regime extended to Rossby number of order one on the other hand, as proposed by previous studies. Synthesis of these characteristics suggest a connection between upper and deeper layers, induced by the divergent motions, through which small scales near the surface interact with mesoscales in the interior.
机译:具有一阶Rossby数的海洋湍流的高分辨率模拟显示,上层动力学与内部动力学显着不同。如前所述,上层动力学的特征是浅速度谱,其对应于从中尺度到小尺度的光谱范围内分布的动能。这种动力学是由与表面密度异常有关的小规模前生驱动的。内部动力学的特征在于较陡的速度谱,并且由内部斜压不稳定所建立的潜在涡度异常驱动。与表面锋面形成有关的发散运动的影响导致上层变暖,旋风优势和等位位移的负偏度。相反,内部的发散运动导致更深层的冷却,反回旋支配地位和等渗位移的正偏度。如先前的研究所提出的,这些不同的营养代谢过程与一方面扩展到Rossby数的SQG方案和另一方面扩展到Rossby数的内部QG方案相一致。这些特征的综合表明由发散运动引起的上层和深层之间的连接,通过该连接,靠近表面的小尺度与内部的中尺度相互作用。

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