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Impact of Arctic sea ice variations on winter temperature anomalies in northern hemispheric land areas

机译:北极海冰变化对北半球陆地地区冬季温度异常的影响

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摘要

Coordinated numerical ensemble experiments with six different state-of-the-art atmosphere models have been used in order to evaluate the respective impact of the observed Arctic sea ice and sea surface temperature (SST) variations on air temperature variations in mid and high latitude land areas. Two sets of experiments have been designed; in the first set (EXP1), observed daily sea ice concentration and SST variations are used as lower boundary forcing over 1982-2014 while in the second set (EXP2) the SST variations are replaced by the daily SST climatology. The observed winter 2m air temperature (T2m) variations are relatively well reproduced in a number of mid and high latitude land areas in EXP1, with best agreement in southwestern North America and northern Europe. Sea ice variations are important for the interannual T2m variations in northern Europe but have limited impact on all other mid and high latitude land regions. In particular, sea ice variations do not contribute to the observed opposite variations in the Arctic and mid latitude in our model experiments. The spread across ensemble members is large and many ensemble members are required to reproduce the observed T2m variations over northern Europe in our models. The amplitude of T2m anomalies in the coldest observed winters over northern Europe is not reproduced by our multi-model ensemble means. However, the sea ice conditions in these respective winters and mainly the thermodynamic response to the ice anomalies lead to an enhanced likelihood for occurrence of colder than normal winters and extremely cold winters. Still, the main reason for the observed extreme cold winters is internal atmospheric dynamics. The coldest simulated northern European winters in EXP1 and EXP2 between 1982 and 2014 show the same large scale T2m and atmospheric circulation anomaly patterns as the observed coldest winters, indicating that the models are well able to reproduce the processes, which cause these cold anomalies. The results are robust across all six models used in this study.
机译:为了评估观测到的北极海冰和海面温度(SST)变化对中高纬度地区气温变化的各自影响,已经使用了具有六个不同的最新大气模型的协调数值集成实验。地区。设计了两组实验;在第一组(EXP1)中,将观测到的每日海冰浓度和SST变化用作1982-2014年的下边界强迫,而在第二组(EXP2)中,将SST变化替换为每日SST气候。在EXP1的许多中高纬度土地地区,观测到的冬季2m气温(T2m)变化相对较好地再现,在北美西南部和北欧地区最为一致。海冰变化对于北欧每年T2m的变化很重要,但对所有其他中高纬度土地区域的影响却有限。特别是,在我们的模型实验中,海冰变化并没有促进北极和中纬度地区观测到的相反变化。合奏成员之间的分布很大,并且需要许多合奏成员来重现我们模型中北欧地区观测到的T2m变化。在我们观察到的北欧最冷的冬季中,T2m异常的幅度没有通过我们的多模式合奏手段得到再现。但是,在这些相应冬季中的海冰条件,以及主要是对冰异常的热力学响应,导致发生比正常冬季和极端寒冷的冬季更高的可能性。尽管如此,观测到的极端寒冷的冬天的主要原因仍是内部大气动力学。 1982年至2014年间在EXP1和EXP2中模拟的北欧最冷的冬季显示出与观测到的最冷的冬季相同的大规模T2m和大气环流异常模式,这表明这些模型能够很好地再现引起这些异常的过程。在本研究中使用的所有六个模型中,结果都是可靠的。

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  • 来源
    《Climate dynamics》 |2019年第6期|3111-3137|共27页
  • 作者单位

    Swedish Meteorol & Hydrol Inst, Norrkoping, Sweden|Stockholm Univ, Bolin Ctr Climate Res, Stockholm, Sweden;

    Nansen Environm & Remote Sensing Ctr, Bergen, Norway|Bjerknes Ctr Climate Res, Bergen, Norway|Chinese Acad Sci, Inst Atmospher Phys, Nansen Zhu Int Res Ctr, Beijing, Peoples R China;

    Sorbonne Univ, UPMC, CNRS, IRD,MNHN,LOCEAN,IPSL, Paris, France;

    Nansen Environm & Remote Sensing Ctr, Bergen, Norway|Bjerknes Ctr Climate Res, Bergen, Norway|Univ Bergen, Geophys Inst, Bergen, Norway;

    Hokkaido Univ, Fac Environm Earth Sci, Sapporo, Hokkaido, Japan;

    Bjerknes Ctr Climate Res, Bergen, Norway|Univ Bergen, Geophys Inst, Bergen, Norway;

    Bjerknes Ctr Climate Res, Bergen, Norway|Norwegian Inst Air Res, NILU, Kjeller, Norway;

    RAS, AM Obukhov Inst Atmospher Phys, Moscow, Russia|RAS, Inst Geog, Moscow, Russia;

    Nansen Environm & Remote Sensing Ctr, Bergen, Norway;

    Danish Meteorol Inst, Copenhagen, Denmark;

    Chinese Acad Sci, Inst Atmospher Phys, Nansen Zhu Int Res Ctr, Beijing, Peoples R China;

    Oregon State Univ, Coll Earth Ocean & Atmospher Sci, Corvallis, OR 97331 USA;

    Danish Meteorol Inst, Copenhagen, Denmark;

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