在没有海洋动力反馈的情况下,变暖的北太平洋海温季节周期的变化

IF 4.8 2区 地球科学 Q1 METEOROLOGY & ATMOSPHERIC SCIENCES
Wen-Xiao Yu, Fukai Liu, Yiyong Luo, Jian Lu, F. Song
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引用次数: 0

摘要

气候模式预测,由于全球变暖,北太平洋副极地的海面温度(SST)季节周期将显著加剧,而较浅的混合层被公认为是主要因素。然而,通过仅采用海洋-大气热耦合的板块海洋实验,我们发现地表热通量的变化对这一季节循环的加剧有很大的影响。特别是,冬季较强的牛顿冷却效应比夏季起到了更强的阻尼作用。这种不同的阻尼作用抑制了寒冷季节的升温,在很大程度上加剧了北太平洋副极地的 SST 季节循环。在北太平洋西北部,由于来自低纬度的暖大气平流增强和边缘海海冰融化,相位提前与早春异常升温有关。与此相反,北太平洋东南部出现了相位延迟,原因是春季相对于秋季出现异常降温。这种降温是由于信风减弱和高云增多造成的。前者导致春季更强的蒸发冷却,后者则阻碍短波辐射到达海洋。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Changes of the SST seasonal cycle in a warmer North Pacific without ocean dynamical feedbacks
Climate models project a significant intensification of the sea surface temperature (SST) seasonal cycle over the subpolar North Pacific due to global warming, with the shallower mixed layer widely recognized as the dominant factor. However, employing slab ocean experiments with only ocean-atmosphere thermal coupling, we find a substantial contribution from changes in surface heat flux to this seasonal cycle intensification. In particular, the stronger Newtonian cooling effect in winter acts as a more potent damping than in summer. This differential damping inhibits the warming in colder seasons, significantly contributing to the intensified SST seasonal cycle in the subpolar North Pacific. In addition, consistent phase shifts in the North Pacific are identified across CMIP6 models. In the northwest North Pacific, a phase advance is associated with anomalous heating in early spring, driven by enhanced warm atmospheric advection from lower latitudes and sea ice melting in marginal seas. In contrast, the southeast North Pacific exhibits a phase delay attributed to the anomalous cooling in spring relative to autumn. This cooling is due to weakened trade winds and increased presence of high clouds. The former leads to stronger evaporative cooling in spring, while the latter impedes shortwave radiation from reaching the ocean.
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来源期刊
Journal of Climate
Journal of Climate 地学-气象与大气科学
CiteScore
9.30
自引率
14.30%
发文量
490
审稿时长
7.5 months
期刊介绍: The Journal of Climate (JCLI) (ISSN: 0894-8755; eISSN: 1520-0442) publishes research that advances basic understanding of the dynamics and physics of the climate system on large spatial scales, including variability of the atmosphere, oceans, land surface, and cryosphere; past, present, and projected future changes in the climate system; and climate simulation and prediction.
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