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Efficient In-Cloud Removal of Aerosols by Deep Convection.

Authors :
Yu P
Froyd KD
Portmann RW
Toon OB
Freitas SR
Bardeen CG
Brock C
Fan T
Gao RS
Katich JM
Kupc A
Liu S
Maloney C
Murphy DM
Rosenlof KH
Schill G
Schwarz JP
Williamson C
Source :
Geophysical research letters [Geophys Res Lett] 2019 Jan 28; Vol. 46 (2), pp. 1061-1069. Date of Electronic Publication: 2019 Jan 23.
Publication Year :
2019

Abstract

Convective systems dominate the vertical transport of aerosols and trace gases. The most recent in situ aerosol measurements presented here show that the concentrations of primary aerosols including sea salt and black carbon drop by factors of 10 to 10,000 from the surface to the upper troposphere. In this study we show that the default convective transport scheme in the National Science Foundation/Department of Energy Community Earth System Model results in a high bias of 10-1,000 times the measured aerosol mass for black carbon and sea salt in the middle and upper troposphere. A modified transport scheme, which considers aerosol activation from entrained air above the cloud base and aerosol-cloud interaction associated with convection, dramatically improves model agreement with in situ measurements suggesting that deep convection can efficiently remove primary aerosols. We suggest that models that fail to consider secondary activation may overestimate black carbon's radiative forcing by a factor of 2.<br /> (©2018. The Authors.)

Details

Language :
English
ISSN :
0094-8276
Volume :
46
Issue :
2
Database :
MEDLINE
Journal :
Geophysical research letters
Publication Type :
Academic Journal
Accession number :
34219825
Full Text :
https://doi.org/10.1029/2018GL080544