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Quantifying Changes in the Arctic Shortwave Cloud Radiative EffectsThe shortwave cloud radiative effect (SWCRE) is important on the Arctic surface radiation budget and the major source of inter-model spread in predictions of Arctic climate. To better understand the individual contributions of various radiative processes to changes in SWCRE, the paper presents the use of the extended APRP (Atmospheric Radiative Perturbation Potential) method. This involves adding the absorptivity for the upward beam and considering differences in reflectivity between upward and downward beams, as well as analyzing the cloud masking effect resulting from changes in surface albedo in more detail. Using data from the CMIP5 and CMIP6 climate models, the study decomposes the SWCRE over the Arctic surface and analyzes inter-model differences in quadrupled CO2 simulations. The study takes into account the fact that the response of SWCRE to Arctic warming is influenced by changes in surface albedo, cloud amount, and cloud microphysics. Results show that in the sunlight season, the reduction in surface albedo associated with sea ice loss is directly linked to strong negative SWCRE, which explains the considerable model discrepancy. Arctic clouds can hinder the positive surface albedo feedback by changing the albedo in two ways: (1) decreasing incoming shortwave radiation due to cloud reflection and (2) by decreasing the shortwave reaching the surface after being reflected by clouds. In addition, increased (decreased) cloud amount and cloud liquid water are shown to be less (more) incoming shortwave fluxes at the surface, but not dominating factors to the Arctic surface radiation budget and its inter-model variation. Overall, the extended APRP method offers a useful tool for analyzing the complex interactions between clouds and radiative process, reasonably decomposes the individual SWCRE responses at the Arctic surface, and emphasizes that considering not only the cloud amount or its properties, but also surface albedo change is critical for the prediction of SWCRE on the Arctic surface.
Document ID
20230009888
Acquisition Source
Langley Research Center
Document Type
Poster
Authors
Doyeon Kim
(Oak Ridge Associated Universities)
Sarah M Kang
(Ulsan National Institute of Science and Technology Ulsan, South Korea)
Hanjun Kim
(Cornell University Ithaca, New York, United States)
Patrick C Taylor
(Langley Research Center Hampton, Virginia, United States)
Date Acquired
July 5, 2023
Subject Category
Meteorology and Climatology
Meeting Information
Meeting: Cloud Feedback Model Intercomparison Project Meeting
Location: Paris
Country: FR
Start Date: July 11, 2023
End Date: July 14, 2023
Sponsors: World Climate Research Programme
Funding Number(s)
WBS: 652528.02.01
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Keywords
Arctic cloud
Cloud radiative effect
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