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首页> 外文期刊>Journal of Physical Oceanography >The Nature of Eddy Kinetic Energy in the Labrador Sea: Different Types of Mesoscale Eddies, Their Temporal Variability, and Impact on Deep Convection
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The Nature of Eddy Kinetic Energy in the Labrador Sea: Different Types of Mesoscale Eddies, Their Temporal Variability, and Impact on Deep Convection

机译:拉布拉多海中涡流能量的性质:不同类型的Messcale Eddies,它们的时间变异性和对深入对流的影响

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摘要

Oceanic eddies are an important component in preconditioning the central Labrador Sea (LS) for deep convection and in restratifying the convected water. This study investigates the different sources and impacts of eddy kinetic energy (EKE) and its temporal variability in the LS with the help of a 52-yr-long hindcast simulation of a 1/20 degrees ocean model. Irminger Rings (IR) are generated in the West Greenland Current (WGC) between 60 degrees and 62 degrees N, mainly affect preconditioning, and limit the northward extent of the convection area. The IR exhibit a seasonal cycle and decadal variations linked to the WGC strength, varying with the circulation of the subpolar gyre. The mean and temporal variations of IR generation can be attributed to changes in deep ocean baroclinic and upper-ocean barotropic instabilities at comparable magnitudes. The main source of EKE and restratification in the central LS are convective eddies (CE). They are generated by baroclinic instabilities near the bottom of the mixed layer during and after convection. The CE have a middepth core and reflect the hydrographic properties of the convected water mass with a distinct minimum in potential vorticity. Their seasonal to decadal variability is tightly connected to the local atmospheric forcing and the associated air-sea heat fluxes. A third class of eddies in the LS are the boundary current eddies shed from the Labrador Current (LC). Since they are mostly confined to the vicinity of the LC, these eddies appear to exert only minor influence on preconditioning and restratification.
机译:海洋漩涡是预处理中央拉布拉多州(LS)的重要组成部分,用于深入对流,并在克制对流的水中。本研究调查了涡流动能(EKE)的不同来源和影响,借助于1/20度海洋模型的52 yr长的Hindcast模拟的帮助下LS的时间变异性。 IRMINGER环(IR)在西格陵兰电流(WGC)之间产生60度和62℃,主要影响预处理,并限制对流区域的向北范围。 IR展示了与WGC强度相关的季节性循环和截止变化,随着亚极孢子的循环而变化。红外一代的平均值和时间变化可归因于在可相当大的幅度下深海洋曲金和海洋曲金和高海洋波奇尺寸的变化。中央LS中的EKE和克制的主要来源是对流漩涡(CE)。它们是通过在混合层底部和在对流之后的附近的曲烷基型稳定性产生的。 CE具有中期核心,并反映对流水质量的水文性质,具有不同的最小尺寸。他们的季节性到二道变异性紧密地连接到当地大气强制和相关的空中海水热量。 LS中的第三类eddies是从拉布拉多电流(LC)流出的边界电流eddies。由于它们主要被限制在LC附近,因此这些漩涡似乎仅对预处理和克制的影响较小。

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