格陵兰的桦林对气候变暖的反应大于对气候变冷的反应

M. Thompson-Munson, Jennifer E. Kay, Bradley R. Markle
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摘要

摘要格陵兰冰原上多孔的雪层和枞树层可以储存融水,限制冰原导致海平面上升的速度。在气候变暖的情况下,这种缓冲作用受到威胁。为了更好地了解格陵兰冰原上的枞树对气温变化的反应的性质和时间尺度,我们使用一个基于物理的模型,在理想化的气候实验中评估大气变暖和变冷对格陵兰枞树空气含量的影响。我们发现格陵兰杉岩对气温的反应是不对称的:升温导致杉岩损失更多的空气含量,而相应降温则使杉岩获得更多的空气含量。温度扰动 1 °C,100 年后,升温使空间综合空气含量减少 9.7%,降温使空间综合空气含量增加 8.3%。在干枞树中,温度与枞树压实度之间的高度非线性关系,以及导热系数与枞树成分之间的依赖关系,导致了这种不对称性。液态水的影响加剧了这种不对称性。在潮湿的杉林地区,融化量随着大气变暖而非线性增加,从而加剧了杉林的再冻结,并通过增加潜热释放使雪堆进一步变暖。我们的研究结果突显了格陵兰杉林对温度变化的脆弱性,并证明杉林空气含量的消耗比生成更有效。这种温度-杉岩关系的不对称性可能会导致格陵兰冰盖在多种时间尺度的气候变化中出现整体的时间不对称的质量变化。
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Greenland's firn responds more to warming than to cooling
Abstract. The porous layer of snow and firn on the Greenland Ice Sheet stores meltwater and limits the rate at which the ice sheet contributes to sea level rise. This buffer is threatened in a warming climate. To better understand the nature and timescales of firn's response to air temperature change on the Greenland Ice Sheet, we use a physics-based model to assess the effects of atmospheric warming and cooling on Greenland's firn air content in idealized climate experiments. We identify an asymmetric response of Greenland's firn to air temperature: firn loses more air content due to warming compared to the amount gained from commensurate cooling. 100 years after a 1 °C temperature perturbation, warming decreases the spatially integrated air content by 9.7 %, and cooling increases it by 8.3 %. In dry firn, this asymmetry is driven by the highly nonlinear relationship between temperature and firn compaction, as well as the dependence of thermal conductivity on the composition of the firn. The influence of liquid water accentuates this asymmetry. In wet firn areas, melt increases nonlinearly with atmospheric warming, thus enhancing firn refreezing and further warming the snowpack through increased latent heat release. Our results highlight the vulnerability of Greenland firn to temperature change and demonstrate that firn air content is more efficiently depleted than generated. This asymmetry in the temperature–firn relationship may contribute to the overall temporally asymmetric mass change of the Greenland Ice Sheet in a changing climate across many timescales.
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