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  4. Roles of Meridional Overturning in Subpolar Southern Ocean SST Trends: Insights from Ensemble Simulations
 
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Roles of Meridional Overturning in Subpolar Southern Ocean SST Trends: Insights from Ensemble Simulations

Journal
Journal of Climate
Journal Volume
35
Journal Issue
5
Pages
1577-1596
Date Issued
2022
Author(s)
Zhang L
Delworth T.L
Kapnick S
He J
Cooke W
Wittenberg A.T
Johnson N.C
Rosati A
Yang X
Lu F
Bushuk M
McHugh C
Murakami H
Zeng F
Jia L
KAI-CHIH TSENG  
Morioka Y.
DOI
10.1175/JCLI-D-21-0466.1
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85125433863&doi=10.1175%2fJCLI-D-21-0466.1&partnerID=40&md5=86bf2b005523f8f4c54827bfff74d25e
https://scholars.lib.ntu.edu.tw/handle/123456789/624820
Abstract
One of the most puzzling observed features of recent climate has been a multidecadal surface cooling trend over the subpolar Southern Ocean (SO). In this study we use large ensembles of simulations with multiple climate models to study the role of the SO meridional overturning circulation (MOC) in these sea surface temperature (SST) trends. We find that multiple competing processes play prominent roles, consistent with multiple mechanisms proposed in the literature for the observed cooling. Early in the simulations (twentieth century and early twenty-first century) internal variability of the MOC can have a large impact, in part due to substantial simulated multidecadal variability of the MOC. Ensemble members with initially strong convection (and related surface warming due to convective mixing of subsurface warmth to the surface) tend to subsequently cool at the surface as convection associated with internal variability weakens. A second process occurs in the late-twentieth and twenty-first centuries, as weakening of oceanic convection associated with global warming and high-latitude freshening can contribute to the surface cooling trend by suppressing convection and associated vertical mixing of subsurface heat. As the simulations progress, the multidecadal SO variability is suppressed due to forced changes in the mean state and increased oceanic stratification. As a third process, the shallower mixed layers can then rapidly warm due to increasing forcing from greenhouse gas warming. Also, during this period the ensemble spread of SO SST trend partly arises from the spread of the wind-driven Deacon cell strength. Thus, different processes could conceivably have led to the observed cooling trend, consistent with the range of possibilities presented in the literature. To better understand the causes of the observed trend, it is important to better understand the characteristics of internal low-frequency variability in the SO and the response of that variability to global warming. Ó 2022 American Meteorological Society.
Subjects
Climate variability; Southern Ocean
Other Subjects
Climate models; Global warming; Greenhouse gases; Mixing; Surface waters; Climate variability; Cooling trends; Ensemble simulation; Internal variability; Meridional overturning circulations; Multiple competing process; Southern ocean; Surface cooling; Temperature trends; Twentieth century; Oceanography; climate variation; computer simulation; ensemble forecasting; meridional circulation; overturn; sea surface temperature; trend analysis; Southern Ocean
Type
journal article

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