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Bottom-Enhanced Diapycnal Mixing Driven by Mesoscale Eddies: Sensitivity to Wind Energy Supply

机译:中尺度涡流驱动的底部增强的斜向混合:对风能供应的敏感性

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It has been estimated that much of the wind energy input to the ocean general circulation is removed by mesoscale eddies via baroclinic instability. While the fate of this energy remains a subject of research, arguments have been presented suggesting that a fraction of it may get transferred to lee waves that, upon breaking, result in bottom-enhanced diapycnal mixing. Here the authors propose several parameterizations of this process and explore their impact in a low-resolution ocean-climate model, focusing on their impact on the abyssal meridional overturning circulation (MOC) of Antarctic Bottom Water. This study shows that, when the eddy energy is allowed to maintain diapycnal mixing, the abyssal MOC generally intensifies with increasing wind energy input to the ocean. In such a case, the whole system is driven by the wind: wind steepens isopycnals and generates eddies, and the (parameterized) eddies generate small-scale mixing, driving the MOC. It is also demonstrated that if the model diapycnal diffusivity, eddy transfer coefficient, and surface climate are decoupled from the winds, then stronger wind stress in the Southern Ocean may lead to a weaker MOC in the abyss-in line with previous results. A simple scaling theory, describing the response of the abyssal MOC strength to wind energy input, is developed, providing a better insight on the numerical results.
机译:据估计,输入到海洋总环流的大部分风能通过斜压不稳定被中尺度涡旋所消除。尽管这种能量的命运仍然是研究的主题,但有论据表明,其中的一部分可能会转移至背风,一旦破裂,将导致底部增强的泛函混合。在这里,作者提出了该过程的几个参数化方法,并探讨了它们在低分辨率海洋气候模型中的影响,重点是它们对南极底水深渊子午翻转环流(MOC)的影响。这项研究表明,当允许涡流能量保持双斜混合时,深海MOC通常随着向海洋的风能输入的增加而增强。在这种情况下,整个系统由风驱动:风使等密度变陡并产生涡流,(参数化的)涡流产生小规模混合,从而驱动MOC。还表明,如果模型的对角线扩散率,涡流传递系数和地表气候与风分离,那么南大洋的强风应力可能导致深渊的MOC较弱,这与先前的结果一致。建立了一个简单的定标理论,描述了深部MOC强度对风能输入的响应,从而提供了对数值结果的更好理解。

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  • 来源
    《Journal of Physical Oceanography》 |2014年第1期|68-85|共18页
  • 作者单位

    School of Earth and Ocean Sciences, University of Victoria, Victoria, British Columbia, Canada University of Victoria, 3800 Finnerty Road, Victoria, BC V8P 5C2, Canada;

    Canadian Centre for Climate Modelling and Analysis, Environment Canada, Victoria, British Columbia, Canada;

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