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近期北极变暖的垂直结构。

Vertical structure of recent Arctic warming.

作者信息

Graversen Rune G, Mauritsen Thorsten, Tjernström Michael, Källén Erland, Svensson Gunilla

机构信息

Department of Meteorology, Stockholm University, S-106 91 Stockholm, Sweden.

出版信息

Nature. 2008 Jan 3;451(7174):53-6. doi: 10.1038/nature06502.

DOI:10.1038/nature06502
PMID:18172495
Abstract

Near-surface warming in the Arctic has been almost twice as large as the global average over recent decades-a phenomenon that is known as the 'Arctic amplification'. The underlying causes of this temperature amplification remain uncertain. The reduction in snow and ice cover that has occurred over recent decades may have played a role. Climate model experiments indicate that when global temperature rises, Arctic snow and ice cover retreats, causing excessive polar warming. Reduction of the snow and ice cover causes albedo changes, and increased refreezing of sea ice during the cold season and decreases in sea-ice thickness both increase heat flux from the ocean to the atmosphere. Changes in oceanic and atmospheric circulation, as well as cloud cover, have also been proposed to cause Arctic temperature amplification. Here we examine the vertical structure of temperature change in the Arctic during the late twentieth century using reanalysis data. We find evidence for temperature amplification well above the surface. Snow and ice feedbacks cannot be the main cause of the warming aloft during the greater part of the year, because these feedbacks are expected to primarily affect temperatures in the lowermost part of the atmosphere, resulting in a pattern of warming that we only observe in spring. A significant proportion of the observed temperature amplification must therefore be explained by mechanisms that induce warming above the lowermost part of the atmosphere. We regress the Arctic temperature field on the atmospheric energy transport into the Arctic and find that, in the summer half-year, a significant proportion of the vertical structure of warming can be explained by changes in this variable. We conclude that changes in atmospheric heat transport may be an important cause of the recent Arctic temperature amplification.

摘要

近几十年来,北极近地表变暖幅度几乎是全球平均水平的两倍,这一现象被称为“北极放大效应”。这种温度放大效应的根本原因仍不明确。近几十年来发生的冰雪覆盖减少可能起到了一定作用。气候模型实验表明,全球气温上升时,北极冰雪覆盖会退缩,导致极地过度变暖。冰雪覆盖减少会引起反照率变化,寒冷季节海冰再冻结增加以及海冰厚度减小都会增加从海洋到大气的热通量。海洋和大气环流以及云量的变化也被认为会导致北极温度放大。在此,我们利用再分析数据研究了20世纪后期北极温度变化的垂直结构。我们发现了地表以上温度放大的证据。在一年中的大部分时间里,冰雪反馈不可能是高层变暖的主要原因,因为这些反馈预计主要影响大气最底层的温度,从而产生一种我们仅在春季才观测到的变暖模式。因此,观测到的温度放大效应的很大一部分必须由在大气最底层以上引起变暖的机制来解释。我们将北极温度场与进入北极的大气能量输送进行回归分析,发现,在夏季半年,变暖垂直结构的很大一部分可以由该变量的变化来解释。我们得出结论,大气热量输送的变化可能是近期北极温度放大效应的一个重要原因。

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