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Origins of climate model discrepancies in atmospheric shortwave absorption and global precipitation changes

机译:大气短波吸收和全球降水变化的气候模型差异的起源

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Projected increases in mean precipitation are constrained by the atmospheric energy budget through radiative-convective equilibrium. However, significant differences persist between climate models on the rate of increase in precipitation per unit warming, mostly arising from the clear-sky radiative response. While the intermodel spread in clear-sky longwave cooling has been explained by climate feedbacks, the sources of spread in clear-sky shortwave heating are still unclear. This article focuses on the latter. Since water vapor contributes most of the atmospheric shortwave absorption, both intermodel differences in its spatial distribution and in radiative transfer parameterizations are plausible hypotheses for the spread. This work reestablishes the primary contribution from water vapor relative to other shortwave-absorbing species and evaluates the validity of both hypotheses. It is found that the intermodel spread in shortwave absorption change most likely originates from the radiation schemes, possibly because of simplifications induced by their low spectral resolutions.
机译:通过辐射-对流平衡,预计的平均降水增加受大气能量收支的限制。但是,在气候模型之间,单位升温的降水增加率之间仍然存在显着差异,这主要是由晴空辐射响应引起的。尽管晴空长波冷却中的模型间传播已通过气候反馈得到了解释,但晴空短波加热中的传播来源仍不清楚。本文重点讨论后者。由于水蒸气贡献了大部分大气短波吸收,因此模型间在空间分布上的差异以及在辐射传递参数化方面的差异均是扩散的合理假设。这项工作重新确立了水蒸气相对于其他短波吸收物种的主要贡献,并评估了这两种假设的有效性。发现短波吸收变化中的模型间扩展最有可能源自辐射方案,这可能是由于其低光谱分辨率引起的简化。

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