大气(单位)
海冰
环境科学
气候学
风暴
海洋学
北极冰盖
海面温度
流冰
暴风雪
大气科学
地质学
气象学
地理
作者
Simon A. Josey,Andrew J. S. Meijers,Adam T. Blaker,Jeremy P. Grist,Jennifer Mecking,Holly Ayres
出处
期刊:Nature
[Springer Nature]
日期:2024-12-18
卷期号:636 (8043): 635-639
被引量:1
标识
DOI:10.1038/s41586-024-08368-y
摘要
Abstract Recent Antarctic sea-ice decline is a substantial source of concern, notably the record low in 2023 (ref. 1 ). Progress has been made towards establishing the causes of ice loss 1–5 but uncertainty remains about its consequences for ocean–atmosphere interaction. Resolution of this uncertainty is important as ice decline can substantially alter surface heat loss and thus the ocean and atmosphere 6 . Here we show that the strongest winter 2023 ice-retraction regions provide an important new source of turbulent ocean heat loss to the atmosphere in wintertime. Ice concentration in these regions (located primarily in the Weddell, Bellingshausen and Ross seas) is reduced by up to 80% and is accompanied by an unprecedented doubling of mid-winter ocean heat loss. Also, there is a phase shift in the time of peak heat loss from late April to mid-June, with weaker than normal heat loss in austral autumn. The winter surface-heat-loss intensification is accompanied by substantial changes on both sides of the ocean–atmosphere interface. These include increases in atmospheric-storm frequency and surface-heat-loss-driven dense water formation, although the implications of the densification for broader processes such as Antarctic bottom water formation remain unclear. Our results reveal that the 2023 Antarctic sea-ice loss has substantially modified air–sea interaction in the Southern Ocean and motivate in-depth analysis of the wider climate-system impacts.
科研通智能强力驱动
Strongly Powered by AbleSci AI