Coppin David, Bony Sandrine
Sorbonne Université, CNRS, LMD/IPSL Paris France.
Department of Physics University of Auckland Auckland New Zealand.
J Adv Model Earth Syst. 2018 Dec;10(12):3123-3138. doi: 10.1029/2018MS001406. Epub 2018 Dec 18.
This study explores the extent to which convective aggregation interacts with sea surface temperature (SST) and affects climate sensitivity. For this purpose, radiative-convective equilibrium simulations are run with a general circulation model coupled to an ocean mixed layer, and several types of perturbations are imposed to the ocean-atmosphere system. Convective aggregation turns out to be much more sensitive to temperature in coupled experiments than in prescribed SST experiments. But changes in convective aggregation induced by a doubling of the CO concentration are always smaller than changes associated with the transition from a non-aggregated to an aggregated state. If aggregation changes were acting alone, they would exert a strong negative feedback on global mean surface temperature. However, in a coupled framework, aggregation changes interact with the SST and generate SST gradients that strengthen the positive low-cloud feedback associated with changes in SST pattern. This overcompensates the negative feedback due to aggregation changes and leads to a larger equilibrium climate sensitivity than in the absence of SST gradients. Although this effect might be model specific, interactions between convective aggregation and the spatial distribution of SST appear crucial to assess the impact of convective aggregation on climate sensitivity.
本研究探讨了对流聚合与海表温度(SST)相互作用的程度以及对气候敏感性的影响。为此,利用耦合了海洋混合层的通用环流模型进行辐射对流平衡模拟,并对海洋 - 大气系统施加了几种类型的扰动。结果表明,与规定海温实验相比,耦合实验中的对流聚合对温度更为敏感。但是,CO₂浓度加倍引起 的对流聚合变化总是小于从非聚合状态到聚合状态转变相关的变化。如果聚合变化单独起作用,它们将对全球平均地表温度产生强烈的负反馈。然而,在耦合框架中,聚合变化与海表温度相互作用并产生海表温度梯度,从而加强了与海表温度模式变化相关的正低云反馈。这过度补偿了由于聚合变化引起的负反馈,并导致比不存在海表温度梯度时更大的平衡气候敏感性。尽管这种效应可能是模型特有的,但对流聚合与海表温度空间分布之间的相互作用对于评估对流聚合对气候敏感性的影响似乎至关重要。