Stirring across the Antarctic Circumpolar Current's southern boundary at the prime meridian, Weddell Sea

IF 4.1 3区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Ocean Science Pub Date : 2023-10-18 DOI:10.5194/os-19-1465-2023
Ria Oelerich, Karen J. Heywood, Gillian M. Damerell, Marcel du Plessis, Louise C. Biddle, Sebastiaan Swart
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Abstract

Abstract. At the southern boundary of the Antarctic Circumpolar Current (ACC), relatively warm ACC waters encounter the colder waters surrounding Antarctica. Strong density gradients across the southern boundary indicate the presence of a frontal jet and are thought to modulate the southward heat transport across the front. In this study, the southern boundary in the Weddell Sea sector at the prime meridian is surveyed for the first time in high resolution over 2 months during an austral summer with underwater gliders occupying a transect across the front on five occasions. The five transects show that the frontal structure (i.e. hydrography, velocities and lateral density gradients) varies temporally. The results demonstrate significant, transient (a few weeks) variability of the southern boundary and its frontal jet in location, strength and width. A mesoscale cold-core eddy is identified to disrupt the southern boundary’s frontal structure and strengthen lateral density gradients across the front. The front's barrier properties are assessed using mixing length scales and potential vorticity to establish the cross-frontal exchange of properties between the ACC and the Weddell Gyre. The results show that stronger lateral density gradients caused by the mesoscale eddy strengthen the barrier-like properties of the front through reduced mixing length scales and pronounced gradients of potential vorticity. In contrast, the barrier-like properties of the southern boundary are reduced when no mesoscale eddy is influencing the density gradients across the front. Using satellite altimetry, we further demonstrate that the barrier properties over the past decade have strengthened as a result of increased meridional gradients of absolute dynamic topography and increased frontal jet speeds in comparison to previous decades. Our results emphasise that locally and rapidly changing barrier properties of the southern boundary are important to quantify the cross-frontal exchange, which is particularly relevant in regions where the southern boundary is located near the Antarctic shelf break (e.g. in the West Antarctic sector).
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在本初子午线威德尔海搅动着穿过南极绕极流的南部边界
摘要在南极环极流(ACC)的南部边界,相对温暖的ACC水域与南极洲周围较冷的水域相遇。穿越南边界的强密度梯度表明锋面射流的存在,并被认为调节了锋面向南的热输送。在本研究中,在南方夏季,水下滑翔机五次占据横断面,首次在2个月的时间里对威德尔海本初子午线区域的南部边界进行了高分辨率测量。五个样带显示锋面结构(即水文、速度和横向密度梯度)随时间变化。结果表明,南边界及其锋面急流在位置、强度和宽度上存在显著的瞬态变化(几周)。中尺度冷核涡破坏了南边界锋面结构,增强了锋面横向密度梯度。使用混合长度尺度和位涡来评估锋面的屏障特性,以建立ACC和威德尔环流之间的特性交换。结果表明,中尺度涡引起的较强的横向密度梯度通过减小混合长度尺度和显著的位涡梯度增强了锋面的障壁特性。相反,当没有中尺度涡影响锋面上的密度梯度时,南部边界的障壁特性减弱。利用卫星测高,我们进一步证明,与过去几十年相比,由于绝对动力地形的经向梯度增加和锋面急流速度增加,过去十年的屏障特性得到了加强。我们的研究结果强调,南部边界的局部和快速变化的屏障特性对于量化交叉锋交换非常重要,这在南部边界位于南极大陆架断裂附近的地区(例如南极西部地区)尤为重要。
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来源期刊
Ocean Science
Ocean Science 地学-海洋学
CiteScore
5.90
自引率
6.20%
发文量
78
审稿时长
6-12 weeks
期刊介绍: Ocean Science (OS) is a not-for-profit international open-access scientific journal dedicated to the publication and discussion of research articles, short communications, and review papers on all aspects of ocean science: experimental, theoretical, and laboratory. The primary objective is to publish a very high-quality scientific journal with free Internet-based access for researchers and other interested people throughout the world. Electronic submission of articles is used to keep publication costs to a minimum. The costs will be covered by a moderate per-page charge paid by the authors. The peer-review process also makes use of the Internet. It includes an 8-week online discussion period with the original submitted manuscript and all comments. If accepted, the final revised paper will be published online. Ocean Science covers the following fields: ocean physics (i.e. ocean structure, circulation, tides, and internal waves); ocean chemistry; biological oceanography; air–sea interactions; ocean models – physical, chemical, biological, and biochemical; coastal and shelf edge processes; paleooceanography.
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