首页> 外文期刊>Oceanographic Literature Review >The submesoscale kinetic energy cascade: Mesoscale absorption of submesoscale mixed layer eddies and frontal downscale fluxes
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The submesoscale kinetic energy cascade: Mesoscale absorption of submesoscale mixed layer eddies and frontal downscale fluxes

机译:基础尺度动能级联:中尺度混合层漩涡的介质吸收和正版势态

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摘要

Mesoscale eddies can be strengthened by the absorption of submesoscale eddies resulting from mixed layer baroclinic instabilities. This is shown for mesoscale eddies in the Agulhas Current system by investigating the kinetic energy cascade with a spectral and a coarse-graining approach in two model simulations of the Agulhas region. One simulation resolves mixed layer baroclinic instabilities and one does not. When mixed layer baroclinic instabilities are included, the largest submesoscale near-surface fluxes occur in wintertime in regions of strong mesoscale activity for upscale as well as downscale directions. The forward cascade at the smallest resolved scales occurs mainly in frontogenetic regions in the upper 30 m of the water column. In the Agulhas ring path, the forward cascade changes to an inverse cascade at a typical scale of mixed layer eddies (15 km). At the same scale, the largest sources of the upscale flux occur. After the winter, the maximum of the upscale flux shifts to larger scales. Depending on the region, the kinetic energy reaches the mesoscales in spring or early summer aligned with the maximum of mesoscale kinetic energy. This indicates the importance of submesoscale flows for the mesoscale seasonal cycle. A case study shows that the underlying process is the mesoscale absorption of mixed layer eddies. When mixed layer baroclinic instabilities are not included in the simulation, the open-ocean upscale cascade in the Agulhas ring path is almost absent. This contributes to a 20% reduction of surface kinetic energy at mesoscales larger than 100 km when submesoscale dynamics are not resolved by the model.
机译:可以通过混合层曲金型稳定性引起的子尺度漩涡的吸收来加强Messcale Eddies。这将在Agulhas电流系统中示出了Messcale EDDIES,通过在Agulhas区域的两种模型模拟中研究了具有光谱和粗磨的粗晶的级联的动能级联。一个仿真解决了混合层曲金属型稳定性,并且一个仿真没有。当包括混合层曲金属型稳定性时,最大的基质尺度近表面助熔剂发生在冬季的冬季尺度活动区域中,以便高档以及低级方向。最小分辨尺度的前向级联主要发生在水柱上部30 m的脑前区域。在Agulhas环形路径中,前向级联以典型的混合层漩涡(15km)变为逆级联。在相同的范围内,最大的升值源发生。在冬季之后,高档磁通量的最大值转移到更大的尺度。根据该地区,动能在春季或初夏的Mesoscal达到与Mescreal动能的最大值对齐。这表明了Mescle季节周期的子尺度流的重要性。案例研究表明,底层过程是混合层漩涡的介质吸收。当混合层雄心型无限度不包括在模拟中时,Agulhas环路路径中的开放海洋高档级联几乎不存在。当模型未解决外部尺度动态时,在大于100 km的Mesoscales上的表面动能降低了20%的增加。

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  • 来源
    《Oceanographic Literature Review》 |2020年第10期|2128-2128|共1页
  • 作者单位

    GEOMAR Helmholtz Centre for Ocean Research Kiel Kiel Germany;

    GEOMAR Helmholtz Centre for Ocean Research Kiel Kiel Germany;

    GEOMAR Helmholtz Centre for Ocean Research Kiel Kiel Germany;

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  • 正文语种 eng
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