北太平洋涛动调节的北极 SAT 和 AMOC 十年变化关系

IF 3.8 2区 地球科学 Q2 METEOROLOGY & ATMOSPHERIC SCIENCES Journal of Geophysical Research: Atmospheres Pub Date : 2024-09-28 DOI:10.1029/2024JD041577
Bowen Zhao, Pengfei Lin, Hailong Liu, Aixue Hu, Xiaolong Chen, Lu Yang
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引用次数: 0

摘要

北冰洋表层空气温度(SAT)相对于低纬度表层空气温度变暖较快,这与各种过程有关,包括局地辐射反馈、极地海洋和大气热量输送。目前还不清楚不同低频内部气候模式的组合如何影响十年尺度上的北极放大效应。本文基于几个独立的观测代用指标、工业化前实验和两个 CMIP6 模式的历史大集合,研究了北极十年期 SAT 变化、其与大西洋经向翻转环流(AMOC)的联系以及可能的内在机制。我们的研究表明,AMOC 和北极 SAT 在十年时间尺度上存在相位变化,而在年际时间尺度上这种关系并不明显。进一步的分析表明,AMOC 伴随着大西洋和北极之间的跨流域海洋水/热输送,会改变融化冰区的海气界面交换,进而放大向极地的大气热量和水分输送。由此增强的向下长波辐射最终会使北极地区变暖。此外,十年尺度的北太平洋涛动(NPO)可以通过影响极向水汽输送和跨流域环流来调节 AMOC 与北极 SAT 之间的关系。具体来说,北太平洋涛动和北太平洋涛动的联合相移可促成北太平洋涛动与北极 SAT 之间 14%-41% 的协变关系。我们的研究为预测北极气候和制约其未来预测的不确定性提供了潜在来源。
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Decadal Relationship Between Arctic SAT and AMOC Changes Modulated by the North Pacific Oscillation

The faster warming for Arctic Ocean surface air temperature (SAT) relative to that at lower latitude is connected with various processes, including local radiation feedback, poleward oceanic and atmospheric heat transport. It is unclear how combinations of different low-frequency internal climate modes influence Arctic amplification on the decadal timescale. Here, the decadal Arctic SAT variation, its connection with the Atlantic meridional overturning circulation (AMOC) and possible underlying mechanisms, are investigated based on several independent observational proxies, pre-industrial experiments, and historical large ensembles of two CMIP6 models. Our study suggests that AMOC and Arctic SAT vary in phase on the decadal timescale, whereas this relationship is insignificant at the interannual timescale. Further analysis shows that the AMOC accompanied with cross-basin oceanic water/heat transport between Atlantic and Arctic would alter air–sea interface exchange over the melting ice regions, and then amplified poleward atmospheric heat and moisture transports. The resulting enhanced downward longwave radiation ultimately warms the Arctic SAT. Additionally, the decadal-scale North Pacific Oscillation (NPO) can modulate the relationship between AMOC and Arctic SAT by influencing poleward moisture transport and cross-basin circulation. Specifically, the phase shift of combined NPO and AMOC can contribute 14%–41% covariance relationship between AMOC and Arctic SAT. Our study provides potential sources for predicting the Arctic climate and constraining its uncertainty in future projections.

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来源期刊
Journal of Geophysical Research: Atmospheres
Journal of Geophysical Research: Atmospheres Earth and Planetary Sciences-Geophysics
CiteScore
7.30
自引率
11.40%
发文量
684
期刊介绍: JGR: Atmospheres publishes articles that advance and improve understanding of atmospheric properties and processes, including the interaction of the atmosphere with other components of the Earth system.
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