Assessing the influence of sea surface temperature and arctic sea ice cover on the uncertainty in the boreal winter future climate projections

被引:0
|
作者
Ho-Nam Cheung
Noel Keenlyside
Torben Koenigk
Shuting Yang
Tian Tian
Zhiqing Xu
Yongqi Gao
Fumiaki Ogawa
Nour-Eddine Omrani
Shaobo Qiao
Wen Zhou
机构
[1] Sun Yat-Sen University,School of Atmospheric Sciences
[2] Southern Marine Science and Engineering Guangdong Laboratory (Zhuhai),Guangdong Province Key Laboratory for Climate Change and Natural Disaster Studies
[3] Sun Yat-Sen University,Bjerknes Centre for Climate Research
[4] University of Bergen,Geophysical Institute
[5] University of Bergen,Bolin Centre for Climate Research
[6] Nansen Environmental and Remote Sensing Center,Nansen
[7] A.M. Obukhov Institute of Atmospheric Physics,Zhu International Research Centre, Institute of Atmospheric Physics
[8] RAS,Graduate School of Science
[9] Swedish Meteorological and Hydrological Institute,Department of Atmospheric and Oceanic Sciences, Institute of Atmospheric Sciences
[10] Stockholm University,undefined
[11] Danish Meteorological Institute,undefined
[12] Chinese Academy of Sciences,undefined
[13] Hokkaido University,undefined
[14] Fudan University,undefined
来源
Climate Dynamics | 2022年 / 59卷
关键词
Climate change; Uncertainty in climate projections; Winter climate; Aleutian low; Icelandic low;
D O I
暂无
中图分类号
学科分类号
摘要
We investigate the uncertainty (i.e., inter-model spread) in future projections of the boreal winter climate, based on the forced response of ten models from the CMIP5 following the RCP8.5 scenario. The uncertainty in the forced response of sea level pressure (SLP) is large in the North Pacific, the North Atlantic, and the Arctic. A major part of these uncertainties (31%) is marked by a pattern with a center in the northeastern Pacific and a dipole over the northeastern Atlantic that we label as the Pacific–Atlantic SLP uncertainty pattern (PA∆SLP). The PA∆SLP is associated with distinct global sea surface temperature (SST) and Arctic sea ice cover (SIC) perturbation patterns. To better understand the nature of the PA∆SLP, these SST and SIC perturbation patterns are prescribed in experiments with two atmospheric models (AGCMs): CAM4 and IFS. The AGCM responses suggest that the SST uncertainty contributes to the North Pacific SLP uncertainty in CMIP5 models, through tropical–midlatitude interactions and a forced Rossby wavetrain. The North Atlantic SLP uncertainty in CMIP5 models is better explained by the combined effect of SST and SIC uncertainties, partly related to a Rossby wavetrain from the Pacific and air-sea interaction over the North Atlantic. Major discrepancies between the CMIP5 and AGCM forced responses over northern high-latitudes and continental regions are indicative of uncertainties arising from the AGCMs. We analyze the possible dynamic mechanisms of these responses, and discuss the limitations of this work.
引用
收藏
页码:433 / 454
页数:21
相关论文
共 50 条
  • [31] RESPONSES OF CLIMATE AND CYCLONES TO REDUCTIONS IN ARCTIC WINTER SEA-ICE
    MURRAY, RJ
    SIMMONDS, I
    JOURNAL OF GEOPHYSICAL RESEARCH-OCEANS, 1995, 100 (C3) : 4791 - 4806
  • [32] On the Predictability of the Winter Euro-Atlantic Climate: Lagged Influence of Autumn Arctic Sea Ice
    Garcia-Serrano, J.
    Frankignoul, C.
    Gastineau, G.
    de la Camara, A.
    JOURNAL OF CLIMATE, 2015, 28 (13) : 5195 - 5216
  • [33] Sensitivity of arctic summer sea ice coverage to global warming forcing: towards reducing uncertainty in arctic climate change projections
    Zhang, Xiangdong
    TELLUS SERIES A-DYNAMIC METEOROLOGY AND OCEANOGRAPHY, 2010, 62 (03) : 220 - 227
  • [34] Impact of aerosol emission controls on future Arctic sea ice cover
    Gagne, M. -E.
    Gillett, N. P.
    Fyfe, J. C.
    GEOPHYSICAL RESEARCH LETTERS, 2015, 42 (20) : 8481 - 8488
  • [35] Modeling the impact of reduced sea ice cover in future climate on the Baltic Sea biogeochemistry
    Eilola, K.
    Martensson, S.
    Meier, H. E. M.
    GEOPHYSICAL RESEARCH LETTERS, 2013, 40 (01) : 149 - 154
  • [36] Influence of spring Arctic sea ice melt on Eurasian surface air temperature
    Xuanwen Zhang
    Bingyi Wu
    Shuoyi Ding
    Climate Dynamics, 2022, 59 : 3305 - 3316
  • [37] Influence of spring Arctic sea ice melt on Eurasian surface air temperature
    Zhang, Xuanwen
    Wu, Bingyi
    Ding, Shuoyi
    CLIMATE DYNAMICS, 2022, 59 (11-12) : 3305 - 3316
  • [38] Role of sea surface temperature, Arctic sea ice and Siberian snow in forcing the atmospheric circulation in winter of 2012–2013
    Yannick Peings
    Gudrun Magnusdottir
    Climate Dynamics, 2015, 45 : 1181 - 1206
  • [39] Modeled Interannual Variability of Arctic Sea Ice Cover is within Observational Uncertainty
    Wyburn-Powell, Christopher
    Jahn, Alexandra
    R. England, Mark
    JOURNAL OF CLIMATE, 2022, 35 (20) : 3227 - 3242
  • [40] NUMERICAL EXPERIMENTS FOR THE IMPACT OF ANTARCTIC ICE COVER AND SEA SURFACE TEMPERATURE ON CLIMATE VARIABILITY
    缪群
    陈隆勋
    Journal of Meteorological Research, 1997, (01) : 23 - 34