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Deep Circulation Variability through the Eastern Subpolar North Atlantic
被引:0
|作者:
Li, Feili
[1
]
Fu, Yao
[2
]
Susan Lozier, M.
[2
]
Bras, Isabela A.L.E.
[3
]
Femke De Jong, M.
[4
]
Wang, Yuan
[1
]
Sanchez-Franks, Alejandra
[5
]
机构:
[1] Xiamen University, Xiamen, China
[2] Georgia Institute of Technology, Atlanta,GA, United States
[3] Woods Hole Oceanographic Institution, Woods Hole,MA, United States
[4] Royal Netherlands Institute for Sea Research, Texel, Netherlands
[5] National Oceanography Centre, Southampton, United Kingdom
基金:
英国自然环境研究理事会;
美国国家科学基金会;
关键词:
Buoyancy;
-;
Hydrogeology;
Miocene;
Oceanography;
Watersheds;
Wind;
D O I:
10.1175/JCLI-D-23-0487.1
中图分类号:
学科分类号:
摘要:
The export of the North Atlantic Deep Water (NADW) from the subpolar North Atlantic is known to affect the variability in the lower limb of the Atlantic meridional overturning circulation (AMOC). However, the respective impact from the transport in the upper NADW (UNADW) and lower NADW (LNADW) layers, and from the various transport branches through the boundary and interior flows, on the subpolar overturning variability remains elusive. To address this, the spatiotemporal characteristics of the circulation of NADW throughout the eastern subpolar basins are examined, mainly based on the 2014–20 observations from the transatlantic Overturning in the Subpolar North Atlantic Program (OSNAP) array. It reveals that the time-mean transport within the overturning’s lower limb across the eastern subpolar gyre [213.0 6 0.5 Sv (1 Sv; 106 m3 s21)] mostly occurs in the LNADW layer (29.4 Sv or 72% of the mean), while the lower limb variability is mainly concentrated in the UNADW layer (57% of the total variance). This analysis further demonstrates a dominant role in the lower limb variability by coherent intraseasonal changes across the region that result from a basinwide barotropic response to changing wind fields. By comparison, there is just a weak seasonal cycle in the flows along the western boundary of the basins, in response to the surface buoyancy-induced water mass transformation. © 2024 American Meteorological Society.
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页码:6221 / 6234
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