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Preconditioning of Antarctic maximum sea ice extent by upper ocean stratification on a seasonal timescale

机译:季节性少校上海分层对南极最大海冰范围的预处理

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This study uses an observationally constrained and dynamically consistent ocean and sea ice state estimate. The author presents a remarkable agreement between the location of the edge of Antarctic maximum sea ice extent, reached in September, and the narrow transition band for the upper ocean (0-100 m depths) stratification, as early as April to June. To the south of this edge, the upper ocean has high stratification, which forbids convective fluxes to cross through; consequently, the ocean heat loss to the atmosphere is an efficient way to cool the surface ocean to the freezing point during April to September. To the north, the upper ocean has low stratification such that the ocean heat loss to the atmosphere is not efficient to cool the upper ocean. The upper ocean is instead cooled mainly through mixing with the colder inflow carried by northward Ekman transport but cannot reach the freezing point due to the nature of mixing. Therefore, upper ocean stratification, dominated by salinity here, provides an important constraint on the northward expansion of Antarctic sea ice to its maximum.
机译:本研究采用了一个人工制约受到限制和动态一致的海洋和海冰状态估计。提交人在南极最大海冰范围的地点之间提出了一个显着的协议,9月达到了近海洋(0-100米深度)分层的狭窄过渡带,截至4月至6月。在这个边缘的南部,上海具有高分层,这禁止对流势态交叉;因此,大气中的海洋热量损失是在4月至9月期间将表面海洋冷却到冰点的有效方法。向北,上海的分层低,使海洋热量损失对大气不效益,以冷却上海。相反,上海主要通过与北方ekman运输的较冷的流入混合来冷却,但由于混合的性质,不能达到冰点。因此,通过这里盐度主持的上海分层,对南极海冰的向北扩展至其最大值提供了重要的约束。

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