Is there a stratospheric radiative feedback in global warming simulations?
Author(s) -
Yi Huang,
Minghong Zhang,
Yan Xia,
Yongyun Hu,
SeokWoo Son
Publication year - 2015
Publication title -
climate dynamics
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.026
H-Index - 163
eISSN - 1432-0894
pISSN - 0930-7575
DOI - 10.1007/s00382-015-2577-2
Subject(s) - stratosphere , tropopause , environmental science , atmospheric sciences , radiative forcing , troposphere , radiative transfer , climatology , coupled model intercomparison project , quasi biennial oscillation , water vapor , atmosphere (unit) , climate model , climate change , physics , meteorology , geology , oceanography , quantum mechanics
The radiative impacts of the stratosphere in global warming simulations are investigated using abrupt CO quadrupling experiments of the Coupled Model Inter-comparison Project phase 5 (CMIP5), with a focus on stratospheric temperature and water vapor. It is found that the stratospheric temperature change has a robust bullhorn-like zonal-mean pattern due to a strengthening of the stratospheric overturning circulation. This temperature change modifies the zonal mean top-of-the-atmosphere energy balance, but the compensation of the regional effects leads to an insignificant global-mean radiative feedback (−0.02 ± 0.04 W m K). The stratospheric water vapor concentration generally increases, which leads to a weak positive global-mean radiative feedback (0.02 ± 0.01 W m K). The stratospheric moistening is related to mixing of elevated upper-tropospheric humidity, and, to a lesser extent, to change in tropical tropopause temperature. Our results indicate that the strength of the stratospheric water vapor feedback is noticeably larger in high-top models than in low-top ones. The results here indicate that although its radiative impact as a forcing adjustment is significant, the stratosphere makes a minor contribution to the overall climate feedback in CMIP5 models.
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