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Assessment of NASA GISS CMIP5 and Post-CMIP5 Simulated Clouds and TOA Radiation Budgets Using Satellite Observations. Part II: TOA Radiation Budget and CREs
Author(s) -
Ryan E. Stanfield,
Xiquan Dong,
Baike Xi,
Anthony D. Del Genio,
Patrick Minnis,
David R. Doelling,
Norman G. Loeb
Publication year - 2014
Publication title -
journal of climate
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 3.315
H-Index - 287
eISSN - 1520-0442
pISSN - 0894-8755
DOI - 10.1175/jcli-d-14-00249.1
Subject(s) - downwelling , environmental science , shortwave , cloud albedo , longwave , cloud forcing , satellite , climatology , meteorology , cloud fraction , shortwave radiation , upwelling , albedo (alchemy) , sky , outgoing longwave radiation , radiative transfer , atmospheric sciences , coupled model intercomparison project , cloud computing , climate model , cloud cover , radiation , climate change , geology , physics , computer science , aerosol , radiative forcing , art , oceanography , convection , operating system , quantum mechanics , art history , astronomy , performance art
In Part I of this study, the NASA GISS Coupled Model Intercomparison Project (CMIP5) and post-CMIP5 (herein called C5 and P5, respectively) simulated cloud properties were assessed utilizing multiple satellite observations, with a particular focus on the southern midlatitudes (SMLs). This study applies the knowledge gained from Part I of this series to evaluate the modeled TOA radiation budgets and cloud radiative effects (CREs) globally using CERES EBAF (CE) satellite observations and the impact of regional cloud properties and water vapor on the TOA radiation budgets. Comparisons revealed that the P5- and C5-simulated global means of clear-sky and all-sky outgoing longwave radiation (OLR) match well with CE observations, while biases are observed regionally. Negative biases are found in both P5- and C5-simulated clear-sky OLR. P5-simulated all-sky albedo slightly increased over the SMLs due to the increase in low-level cloud fraction from the new planetary boundary layer (PBL) scheme. Shortwave,...

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