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首页> 外文期刊>Journal of Geophysical Research. Biogeosciences >INFLUENCE OF CIRRUS CLOUD RADIATIVE FORCING ON CLIMATE AND CLIMATE SENSITIVITY IN A GENERAL CIRCULATION MODEL
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INFLUENCE OF CIRRUS CLOUD RADIATIVE FORCING ON CLIMATE AND CLIMATE SENSITIVITY IN A GENERAL CIRCULATION MODEL

机译:一般循环模型中卷云辐射强迫对气候和气候敏感性的影响

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Six numerical experiments have been performed with a general circulation model (GCM) to study the influence of high-level cirrus clouds and global sea surface temperature (SST) perturbations on climate and climate sensitivity. The CCM used in this investigation is the third-generation ECHAM3 model developed jointly by the Max Planck Institute for Meteorology and the University of Hamburg. It is shown that the model is able to reproduce many features of the observed cloud radiative forcing with considerable skill, such as the annual mean distribution, the response to seasonal forcing, and the response to observed SST variations in the equatorial Pacific. In addition to a reference experiment where the cirrus emissivity is computed as a function of the cloud water content, two sensitivity experiments have been performed in which the cirrus emissivity is either set to zero everywhere above 400 hPa (''transparent cirrus'') or set to 1 (''black cirrus''). These three experiments are repeated identically, except for prescribing a globally uniform SST warming of 4 K. Similar to earlier GCM studies, the changed cloud radiative heating within the troposphere has a profound impact on the model climate. Since the initial radiative forcing introduced by the changed cirrus emissivity is much smaller than the convective or dynamical response, we conclude that the tropical circulation, in particular, is maintained through a positive feedback loop involving cirrus radiative heating, deep cumulus convection, and moisture supply through the large-scale dynamics. Since this interaction has been identified in at least two other GCMs employing different cumulus parameterizations, it does not crucially depend on the respective closure assumption. Moreover, the radiative-convective-dynamical coupling in the tropics is relevant also in the global warming experiment through the increase of cloud water and hence cirrus radiative heating in the warmer atmosphere. It is shown that the spin-up of the Walker circulation in both the global warming and the increased cirrus emissivity experiments is a result of a selection process which enhances the diabatic heat source through asymmetries of the circulation itself, and the extra differential heating feeds back positively on the circulation. It is also shown that cirrus clouds have a significant influence on the global climate sensitivity of the model. In the climate change experiment with the standard model, the climate sensitivity is 20% higher than in a clear-sky reference atmosphere because the increase of cirrus emissivity in the warmer atmosphere contributes substantially to the overall positive cloud feedback. In the transparent cirrus model the cloud feedback is negative, and the global sensitivity is reduced by 20% as compared to a clear-sky reference atmosphere. [References: 52]
机译:使用通用循环模型(GCM)进行了六个数值实验,以研究高水平卷云和全球海面温度(SST)扰动对气候和气候敏感性的影响。本调查中使用的CCM是由马克斯·普朗克气象研究所和汉堡大学联合开发的第三代ECHAM3模型。结果表明,该模型能够以相当高的技能重现观测到的云辐射强迫的许多特征,例如年平均分布,对季节强迫的响应以及对赤道太平洋观测到的海温变化的响应。除了参考实验(计算出的卷云发射率是云水含量的函数)之外,还进行了两次灵敏度实验,其中在高于400 hPa的任何地方,卷云发射率都设置为零(“透明卷云”),或者设置为1(“黑色卷云”)。除了规定全球统一的4 K SST增温外,这三个实验的重复相同。与早期的GCM研究相似,对流层内变化的云辐射热对模型气候有深远的影响。由于由卷云发射率引起的初始辐射强迫远小于对流或动力响应,因此我们得出结论,特别是通过涉及卷云辐射加热,深积云对流和水分供应的正反馈回路来维持热带环流通过大规模的动力学。由于在至少两个其他使用不同的累积参数化的GCM中已经确定了这种交互作用,因此它并不是至关重要地依赖于相应的闭合假设。此外,热带地区的辐射-对流-动力耦合在全球变暖实验中也很重要,这是因为云水增加,因此在较暖的大气层中卷云的辐射热量增加。结果表明,在全球变暖和卷云发射率实验中沃克循环的自旋加速是选择过程的结果,该选择过程通过循环本身的不对称性增强了绝热热源,并且额外的差热反馈积极地促进流通。还表明,卷云对模型的全球气候敏感性具有重大影响。在使用标准模型进行的气候变化实验中,气候敏感性比晴朗天空参考大气高20%,这是因为在较暖的大气层中卷云发射率的提高对总体正云反馈有很大贡献。在透明卷云模型中,云层反馈为负,与晴空参考大气相比,全局灵敏度降低了20%。 [参考:52]

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