Summertime atmosphere–sea ice coupling in the Arctic simulated by CMIP5/6 models: Importance of large-scale circulation

被引:0
作者
Rui Luo
Qinghua Ding
Zhiwei Wu
Ian Baxter
Mitchell Bushuk
Yiyi Huang
Xiquan Dong
机构
[1] Fudan University,Department of Atmospheric and Oceanic Sciences, Institute of Atmospheric Sciences
[2] University of California,Department of Geography, and Earth Research Institute
[3] Geophysical Fluid Dynamics Laboratory,Department of Hydrology and Atmospheric Sciences
[4] University of Arizona,undefined
来源
Climate Dynamics | 2021年 / 56卷
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摘要
Summertime barotropic high pressure in the Arctic and its induced warmer and wetter atmosphere over sea ice are suggested to be important contributors to September sea ice loss on interannual and interdecadal time scales in the past decades. Using ERA5 and other reanalysis data, we find that atmospheric warming and moistening in the Arctic, synchronized by high latitude atmospheric circulation variability, work in tandem to melt sea ice through increasing downwelling longwave radiation at the surface. To what extent this atmosphere-longwave radiation-sea ice relationship can be captured in CMIP5 and 6 remains unknown and thus addressing this question is the objective of this study. To achieve this goal, we construct a process-oriented metric emphasizing the statistical relationship between atmospheric temperature and humidity with sea ice, which can effectively rank and differentiate the performance of 30 CMIP5 climate models in reproducing the observed connection. Based on our evaluation, we suggest that most available models in CMIP5 and 6 have a limitation in reproducing the full strength of the observed atmosphere–sea ice connection. This limitation likely stems from a weak impact of downwelling longwave radiation in linking sea ice with circulation associated with the weak sensitivity of the temperature and humidity fields to circulation variability in the Arctic. Thus, further efforts should be devoted to understanding the sources of these models’ limitations and improve skill in simulating the effects of atmospheric circulation in coupling temperature, humidity, surface radiation and sea ice together during Arctic summer.
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页码:1467 / 1485
页数:18
相关论文
共 210 条
  • [1] Baxter I(2019)How tropical pacific surface cooling contributed to accelerated sea ice melt from 2007 to 2012 as ice is thinned by anthropogenic forcing J Clim 32 8583-8602
  • [2] Bennartz R(2013)July 2012 Greenland melt extent enhanced by low-level liquid clouds Nature 496 83-86
  • [3] Shupe MD(1999)The effective number of spatial degrees of freedom of a time-varying field J Clim 12 1990-2009
  • [4] Turner DD(2012)Ubiquitous low-level liquid-containing Arctic clouds: new observations and climate model constraints from CALIPSO-GOCCP Geophys Res Lett 10 20-29
  • [5] Walden VP(2020)Divergent consensuses on arctic amplification influence on midlatitude severe winter weather Nat Clim Change 35 L01703-597
  • [6] Steffen K(2008)Accelerated decline in the Arctic sea ice cover Geophys Res Lett 137 535-295
  • [7] Cox CJ(2019)The Arctic surface climate in CMIP6: status and developments since CMIP5 J Clim 7 289-33
  • [8] Kulie MS(2011)The ERA-Interim reanalysis: configuration and performance of the data assimilation system Q J R Meteorol Soc 12 28-1958
  • [9] Miller NB(2017)Influence of high-latitude atmospheric circulation changes on summertime Arctic sea ice Nat Clim Change 9 1937-5454
  • [10] Pettersen C(2019)Fingerprints of internal drivers of Arctic sea ice loss in observations and model simulations Nat Geosci 30 5419-2049