近几十年来北大西洋热带气旋引起的寒流恢复较快

IF 8.5 1区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Effy B. John, Karthik Balaguru, L. Ruby Leung, Gregory R. Foltz, Samson M. Hagos
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引用次数: 0

摘要

与热带气旋(tc)相关的强风在其尾流中产生海洋表面冷却,这种冷却可以持续数周。虽然多年来对海面的观测显示了海洋的显著变暖,但冷流恢复时间的长期变化在很大程度上仍然未知。研究发现,自2001年以来,大西洋主要发展区(MDR)的TC冷尾迹有较快恢复的趋势。这主要是由于北大西洋信风的强度减弱,这减少了海洋的蒸发冷却。TC冷尾流的更快衰减导致后续TC遇到先前TC的持续尾流时,其强度显著增加,其强度约为海洋长期变暖造成的强度的9%。最后,地球系统模式模拟表明,观测到的冷尾恢复时间的减少可能会持续到未来。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Faster recovery of North Atlantic tropical cyclone-induced cold wakes in recent decades

Faster recovery of North Atlantic tropical cyclone-induced cold wakes in recent decades

Intense winds associated with tropical cyclones (TCs) generate surface ocean cooling in their wakes, which can persist for several weeks in their aftermath. While multi-decadal observations of the sea surface have shown a substantial warming of the ocean, long-term changes in cold wake recovery time remain largely unknown. Here we find a trend toward faster recovery of TC cold wakes in the Atlantic main development region (MDR) since 2001. This is due primarily to a decrease in the strength of the North Atlantic trade winds, which reduces evaporative cooling of the ocean. The faster damping of TC cold wakes has led to a significant increase in the intensification of subsequent TCs that encounter lingering wakes from prior TCs, with a magnitude that is about 9% of that from long-term warming of the ocean. Finally, earth system model simulations indicate that the observed decrease in the cold wake recovery time will likely continue into the future.

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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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