A Weakened AMOC Could Cause Southern Ocean Temperature and Sea-Ice Change on Multidecadal Timescales

IF 3.3 2区 地球科学 Q1 OCEANOGRAPHY
Rachel Diamond, Louise C. Sime, David Schroeder, Laura C. Jackson, Paul R. Holland, Eduardo Alastrué de Asenjo, Katinka Bellomo, Gokhan Danabasoglu, Aixue Hu, Johann Jungclaus, Marisa Montoya, Virna L. Meccia, Oleg A. Saenko, Didier Swingedouw
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Abstract

We present the first CMIP6-era multi-model intercomparison of the Southern Ocean (SO) temperature and sea-ice response to substantial Atlantic meridional overturning circulation (AMOC) weakening. Results are based on analysis of the North Atlantic Hosing Model Intercomparison Project, involving eight CMIP6 models under identical North Atlantic freshwater hosing. On multidecadal timescales, we find that southwards ocean heat transport into the SO increases, causing surface warming and sea-ice loss. Additionally, an atmospheric tropical-Antarctic teleconnection, identified here for the first time, causes regional temperature and sea-ice changes in the SO. Unlike previous studies, we find that the Amundsen Sea Low deepens for only some models. Overall, in the multi-model ensemble mean (multi-model range in brackets), over years 50–100 after AMOC weakening: SO surface air temperature warms by 0.3 (0.1–0.7)°C, sea level pressure (SLP) decreases by 30 (10–70) Pa, and sea-ice area decreases by 0.4 (−0.2–1.3) Mkm2. The teleconnection leads to regional differences between the response in the Indian sector and the Weddell Sea of 180 (80–320) Pa in SLP, 0.6 (0.5–1.4)°C in surface air temperature, and 0.1 (0.1–0.2) Mkm2 in sea-ice area. These SO heat transport, temperature, pressure, and sea-ice changes are small relative to the changes expected under future anthropogenic warming, despite the large and idealized 0.3 Sv hosing used to weaken the AMOC.

Abstract Image

AMOC减弱可能导致南大洋温度和海冰在几十年时间尺度上的变化
我们提出了第一个cmip6时代南大洋(SO)温度和海冰对大西洋经向翻转环流(AMOC)减弱的响应的多模式对比。研究结果基于北大西洋淡水水体模型比对项目的分析,该项目涉及北大西洋淡水水体相同条件下的8个CMIP6模型。在多年代际尺度上,向南的海洋热输运增加,导致地表变暖和海冰损失。此外,这里首次发现的热带-南极大气远相关导致了SO的区域温度和海冰变化。与以往的研究不同,我们发现阿蒙森海低压只在某些模式下加深。总体而言,在AMOC减弱后50 ~ 100年的多模式集合平均值(括号内为多模式范围)中,SO地表气温升高0.3(0.1 ~ 0.7)°C,海平面气压(SLP)降低30 (10 ~ 70)Pa,海冰面积减少0.4(−0.2 ~ 1.3)Mkm2。远相关导致印度板块和威德尔海在SLP 180 (80-320) Pa、地表气温0.6(0.5-1.4)°C和海冰面积0.1 (0.1 - 0.2)Mkm2的响应区域差异。这些SO热输运、温度、压力和海冰的变化相对于未来人为变暖的预期变化来说是很小的,尽管使用了理想的0.3 Sv来削弱AMOC。
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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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