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对流层稳定性与气候敏感性及地球观测辐射收支的关系。

Relationship of tropospheric stability to climate sensitivity and Earth's observed radiation budget.

机构信息

Department of Meteorology, University of Reading, Reading RG6 6BB, United Kingdom;

National Centre for Atmospheric Science-Climate, University of Reading, Reading RG6 6BB, United Kingdom.

出版信息

Proc Natl Acad Sci U S A. 2017 Dec 12;114(50):13126-13131. doi: 10.1073/pnas.1714308114. Epub 2017 Nov 28.

Abstract

Climate feedbacks generally become smaller in magnitude over time under CO forcing in coupled climate models, leading to an increase in the effective climate sensitivity, the estimated global-mean surface warming in steady state for doubled CO Here, we show that the evolution of climate feedbacks in models is consistent with the effect of a change in tropospheric stability, as has recently been hypothesized, and the latter is itself driven by the evolution of the pattern of sea-surface temperature response. The change in climate feedback is mainly associated with a decrease in marine tropical low cloud (a more positive shortwave cloud feedback) and with a less negative lapse-rate feedback, as expected from a decrease in stability. Smaller changes in surface albedo and humidity feedbacks also contribute to the overall change in feedback, but are unexplained by stability. The spatial pattern of feedback changes closely matches the pattern of stability changes, with the largest increase in feedback occurring in the tropical East Pacific. Relationships qualitatively similar to those in the models among sea-surface temperature pattern, stability, and radiative budget are also found in observations on interannual time scales. Our results suggest that constraining the future evolution of sea-surface temperature patterns and tropospheric stability will be necessary for constraining climate sensitivity.

摘要

在耦合气候模型中,CO2 强迫下气候反馈的幅度随时间的推移通常会变小,这导致有效气候敏感性增加,即 CO2 倍增时全球平均表面变暖的估计值。在这里,我们表明模型中气候反馈的演变与对流层稳定性变化的影响一致,如最近假设的那样,而后者本身是由海表温度响应模式的演变驱动的。气候反馈的变化主要与海洋热带低空云的减少(更积极的短波云反馈)以及非绝热率反馈的减少有关,这与稳定性的降低是一致的。地表反照率和湿度反馈的较小变化也有助于整体反馈的变化,但稳定性无法解释这些变化。反馈变化的空间模式与稳定性变化的模式非常吻合,最大的反馈增加发生在热带东太平洋。在海表温度模式、稳定性和辐射收支之间的关系中也发现了与模型中定性相似的关系,这些关系在年际时间尺度的观测中也存在。我们的结果表明,为了限制气候敏感性,约束未来海表温度模式和对流层稳定性的演变将是必要的。

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