热带太平洋海温趋势对北半球冬季全球和区域环流的强烈影响

IF 8.4 1区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Joonsuk M. Kang, Rhidian Thomas, Nick Dunstone, Tiffany A. Shaw, Tim Woollings
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引用次数: 0

摘要

有证据表明,在卫星时代热带太平洋海表温度(SST)趋势存在差异,其中大多数耦合气候模式难以模拟观测到的La Niña-like海表温度趋势。在这里,我们强调了热带太平洋海温趋势差异对北半球冬季全球环流趋势的更广泛影响,使用两种互补的方法来约束耦合模式海温趋势:调节近期气候预测(后播)模拟和起搏器耦合气候模拟。抑制热带太平洋海温趋势的强环流趋势响应类似于La Niña的年际响应。抑制热带太平洋海温显著降低了热带对流层变暖,提高了与再分析的一致性,并适度地使纬向平均急流向极地移动。它还改善了enso敏感地区(如美洲、南亚和南部非洲)的地表气温和降水趋势。我们的结果强调了热带太平洋海温对于实现多年代际模式预估的可信度的重要性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Robust impact of tropical Pacific SST trends on global and regional circulation in boreal winter

Robust impact of tropical Pacific SST trends on global and regional circulation in boreal winter

Evidence has emerged of a discrepancy in tropical Pacific sea surface temperature (SST) trends over the satellite era, where most coupled climate models struggle to simulate the observed La Niña-like SST trends. Here we highlight wider implications of the tropical Pacific SST trend discrepancy for global circulation trends during boreal winter, using two complementary methods to constrain coupled model SST trends: conditioning near-term climate prediction (hindcast) simulations, and pacemaking coupled climate simulations. The robust circulation trend response to constraining the tropical Pacific SST trend resembles the interannual La Niña response. Constraining tropical Pacific SST robustly reduces tropical tropospheric warming, improving agreement with reanalyses, and moderately shifts the zonal-mean jets poleward. It also improves surface air temperature and precipitation trends in ENSO-sensitive regions, such as the Americas, South Asia, and southern Africa. Our results underline the importance of tropical Pacific SST for achieving confidence in multidecadal model projections.

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来源期刊
npj Climate and Atmospheric Science
npj Climate and Atmospheric Science Earth and Planetary Sciences-Atmospheric Science
CiteScore
8.80
自引率
3.30%
发文量
87
审稿时长
21 weeks
期刊介绍: npj Climate and Atmospheric Science is an open-access journal encompassing the relevant physical, chemical, and biological aspects of atmospheric and climate science. The journal places particular emphasis on regional studies that unveil new insights into specific localities, including examinations of local atmospheric composition, such as aerosols. The range of topics covered by the journal includes climate dynamics, climate variability, weather and climate prediction, climate change, ocean dynamics, weather extremes, air pollution, atmospheric chemistry (including aerosols), the hydrological cycle, and atmosphere–ocean and atmosphere–land interactions. The journal welcomes studies employing a diverse array of methods, including numerical and statistical modeling, the development and application of in situ observational techniques, remote sensing, and the development or evaluation of new reanalyses.
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