澳洲-南极盆地南极底水通道的量化

IF 3.4 2区 地球科学 Q1 OCEANOGRAPHY
P. Sholeninova, A. K. Morrison, A. McC. Hogg, A. Foppert
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引用次数: 0

摘要

南极底水(AABW)的形成驱动了经向翻转环流的下肢,影响了地球的气候、碳循环和海洋生物生产力。最近的研究结果表明,南大洋的AABW正在发生变化,包括变新鲜、变暖和变薄。这些变化激发了对基于过程的AABW循环和变异性理解的需求。然而,恶劣的南极环境限制了现场观测,使得高分辨率模型成为研究AABW的重要工具。本研究考察了澳大利亚-南极盆地中罗斯海和毗邻ad海缘陆地海岸的大陆架上的AABW品种。我们在海洋-海冰模型中使用被动染料样示踪剂探索它们的相互作用和途径。我们的研究结果表明,尽管通过陆架断裂的体积运输更高,但与ALBW相比,RSBW对盆地通风的贡献更小。这是由于存在可选择的路径,将RSBW向东转移,并与沿大陆斜坡的环境水显著混合。相比之下,ALBW在盆地深海水域的通风中起着更突出的作用,这一结论得到了最近Deep Argo观测的支持。我们还发现,当RSBW在斜坡上首次遇到ALBW时,由于该阶段密度相对较低,它在垂直方向上覆盖了ALBW。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Quantification of Antarctic Bottom Water Pathways in the Australian-Antarctic Basin

Quantification of Antarctic Bottom Water Pathways in the Australian-Antarctic Basin

Quantification of Antarctic Bottom Water Pathways in the Australian-Antarctic Basin

Quantification of Antarctic Bottom Water Pathways in the Australian-Antarctic Basin

Quantification of Antarctic Bottom Water Pathways in the Australian-Antarctic Basin

Antarctic Bottom Water (AABW) formation drives the lower limb of the meridional overturning circulation, influencing the Earth's climate, carbon cycle, and marine biological productivity. Recent findings suggest that AABW across the Southern Ocean is changing, including freshening, warming and thinning. These changes motivate the need for process-based understanding of AABW circulation and variability. However, the harsh Antarctic environment limits in-situ observations, making high-resolution models an essential tool for investigating AABW. This study examines AABW varieties from the Ross Sea and the continental shelf adjacent to the Adélie Land coast in the Australian-Antarctic Basin. We explore their interactions and pathways using passive dye-like tracers in an ocean–sea ice model. Our findings reveal that, despite higher volume transport across the shelf break, RSBW contributes less to the basin's ventilation compared to ALBW. This is due to the presence of alternative pathways that divert RSBW eastward and its significant mixing with ambient waters along the continental slope. In contrast, ALBW plays a more prominent role in ventilating the abyssal waters of the basin, a conclusion supported by recent Deep Argo observations. We also found that when RSBW first encounters ALBW along the slope, it vertically overrides ALBW due to its relatively lower density at this stage.

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来源期刊
Journal of Geophysical Research-Oceans
Journal of Geophysical Research-Oceans Earth and Planetary Sciences-Oceanography
CiteScore
7.00
自引率
13.90%
发文量
429
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