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Role of vertical mixing originating from small vertical scale structures above and within the equatorial thermocline in an OGCM

机译:垂直混合的作用源自OGCM中赤道热跃层上方和内部的小型垂直尺度结构

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Recent high vertical resolution measurements show small vertical scale structures (SVSs) are present in the flow above and within the equatorial thermocline and that these structures contribute significantly to ocean mixing. The SVSs are typically unresolved in OGCMs and thus their impact needs to be parameterized. We investigate the impact of the mixing induced by the SVSs on the state of the equatorial Pacific in an ocean general circulation model (OGCM). As a first step to determine the importance of the SVS induced mixing we introduce an enhanced mixing within and above the equatorial thermocline. It is found that this enhanced mixing reduces the stratification above the thermocline, and sharpens the thermocline through the Phillips effect. The sharpened thermocline limits the exchange of heat across the thermocline and traps the surface heating above the thermocline. The reduced stratification leads to less cooling of the mixed layer through entrainment, a reduced annual cycle and an increase in the annual mean of the sea surface temperature (SST) in the eastern equatorial cold tongue. The depth dependency in enhanced SVS mixing is crucial to its impact; when the enhanced mixing is applied throughout the depth of the ocean (as has been done usually in previous studies,) the cold tongue SST is cooled further. In the western equatorial Pacific, where the thermocline is deeper, SVS enhanced mixing induces a colder SST. We also find that the SVS mixing reduces the eddy kinetic energy associated with the tropical instability waves through a reduction of the meridional and vertical shear of the equatorial currents and temperature gradient.
机译:最近的高垂直分辨率测量结果表明,赤道热跃层上方和内部的气流中存在较小的垂直尺度结构(SVS),这些结构显着促进了海洋融合。 SVS通常在OGCM中无法解决,因此需要对其影响进行参数化。我们在海洋总环流模型(OGCM)中调查了由SVS引起的混合对赤道太平洋状态的影响。作为确定SVS诱导混合的重要性的第一步,我们在赤道热跃层内部和上方引入了增强的混合。已经发现,这种增强的混合减少了温跃层上方的分层,并通过菲利普斯效应使温跃层锐化。尖锐的热跃线限制了热跃线之间的热交换,并在热跃线上方捕获了表面热量。减少的分层会导致夹带对混合层的冷却减少,从而减少年循环,并增加赤道东部冷舌的海面温度(SST)的年平均数。增强的SVS混合中的深度依赖性对其影响至关重要。当在整个海洋深度进行增强混合时(如先前研究中通常所做的那样),冷舌SST会进一步冷却。在赤道太平洋更深的西部赤道太平洋中,SVS增强的混合会导致SST降低。我们还发现,SVS混合通过减少赤道流的经向和垂直切变和温度梯度来减少与热带不稳定波有关的涡动能。

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