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Overlooked Role of Mesoscale Winds in Powering Ocean Diapycnal Mixing

机译:Mesoscale Winds在通电海洋延迟混合中忽略了忽视的作用

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Diapycnal mixing affects the uptake of heat and carbon by the ocean as well as plays an important role in global ocean circulations and climate. In the thermocline, winds provide an important energy source for furnishing diapycnal mixing primarily through the generation of near-inertial internal waves. However, this contribution is largely missing in the current generation of climate models. In this study, it is found that mesoscale winds at scales of a few hundred kilometers account for more than 65% of near-inertial energy flux into the North Pacific basin and 55% of turbulent kinetic dissipation rate in the thermocline, suggesting their dominance in powering diapycnal mixing in the thermocline. Furthermore, a new parameterization of wind-driven diapycnal mixing in the ocean interior for climate models is proposed, which, for the first time, successfully captures both temporal and spatial variations of wind-driven diapycnal mixing in the thermocline. It is suggested that as mesoscale winds are not resolved by the climate models participated in the Coupled Model Intercomparison Project Phase 5 (CMIP5) due to insufficient resolutions, the diapycnal mixing is likely poorly represented, raising concerns about the accuracy and robustness of climate change simulations and projections.
机译:十尾混合影响海洋的热量和碳的摄取,并在全球海洋循环和气候中起着重要作用。在热水下,风提供了一种重要的能源,用于主要通过近惯性内部波的产生来提供二进制复合混合。然而,在目前的气候模型中,这种贡献很大程度上缺失。在这项研究中,发现尺度在几百公里的尺度下的Messcale风占近距离能量通量的65%以上的北太平洋盆地和55%的湍流动力管道耗散率的55%,表明他们的主导地位在热控中供电延迟混合。此外,提出了用于气候模型的海洋内部的风力延迟混合的新参数化,这是首次成功地捕获热水下水驱动的延迟混合的时间和空间变化。建议由于分辨率不足而参与耦合模型相互比较项目阶段5(CMIP5)的气候模型而没有解决Mescle Winds,延迟混合可能差不多,提高了对气候变化模拟的准确性和鲁棒性的担忧和投影。

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