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Evaluating Model Parameterizations of Submicron Aerosol Scattering and Absorption with in situ Data from ARCTAS 2008Accurate modeling of the scattering and absorption of ultraviolet and visible radiation by aerosols is essential for accurate simulations of atmospheric chemistry and climate. Closure studies using in situ measurements of aerosol scattering and absorption can be used to evaluate and improve models of aerosol optical properties without interference from model errors in aerosol emissions, transport, chemistry, or deposition rates. Here we evaluate the ability of four externally mixed, fixed size distribution parameterizations used in global models to simulate submicron aerosol scattering and absorption at three wavelengths using in situ data gathered during the 2008 Arctic Research of the Composition of the Troposphere from Aircraft and Satellites (ARCTAS) campaign. The four models are the NASA Global Modeling Initiative (GMI) Combo model, GEOS-Chem v9- 02, the baseline configuration of a version of GEOS-Chem with online radiative transfer calculations (called GC-RT), and the Optical Properties of Aerosol and Clouds (OPAC v3.1) package. We also use the ARCTAS data to perform the first evaluation of the ability of the Aerosol Simulation Program (ASP v2.1) to simulate submicron aerosol scattering and absorption when in situ data on the aerosol size distribution are used, and examine the impact of different mixing rules for black carbon (BC) on the results. We find that the GMI model tends to overestimate submicron scattering and absorption at shorter wavelengths by 10-23 percent, and that GMI has smaller absolute mean biases for submicron absorption than OPAC v3.1, GEOS-Chem v9-02, or GC-RT. However, the changes to the density and refractive index of BC in GCRT improve the simulation of submicron aerosol absorption at all wavelengths relative to GEOS-Chem v9-02. Adding a variable size distribution, as in ASP v2.1, improves model performance for scattering but not for absorption, likely due to the assumption in ASP v2.1 that BC is present at a constant mass fraction throughout the aerosol size distribution. Using a core-shell mixing rule in ASP overestimates aerosol absorption, especially for the fresh biomass burning aerosol measured in ARCTAS-B, suggesting the need for modeling the time-varying mixing states of aerosols in future versions of ASP.
Document ID
20170003441
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Alvarado, Matthew J.
(Atmospheric and Environmental Research, Inc. Lexington, MA, United States)
Lonsdale, Chantelle R.
(Atmospheric and Environmental Research, Inc. Lexington, MA, United States)
Macintyre, Helen L.
(Massachusetts Inst. of Tech. Cambridge, MA, United States)
Bian, Huisheng
(Maryland Univ. Baltimore County Baltimore, MD, United States)
Chin, Mian
(NASA Goddard Space Flight Center Greenbelt, MD United States)
Ridley, David A.
(Massachusetts Inst. of Tech. Cambridge, MA, United States)
Heald, Colette L.
(Massachusetts Inst. of Tech. Cambridge, MA, United States)
Thornhill, Kenneth L.
(Science Systems and Applications, Inc. Hampton, VA, United States)
Anderson, Bruce E.
(NASA Langley Research Center Hampton, VA United States)
Cubison, Michael J.
(Colorado Univ. Boulder, CO, United States)
Jimenez, Jose. L.
(Colorado Univ. Boulder, CO, United States)
Kondo, Yutaka
(Tokyo Univ. Japan)
Sahu, Lokesh K.
(Tokyo Univ. Japan)
Dibb, Jack E.
(New Hampshire Univ. Durham, NH, United States)
Wang, Chien
(Massachusetts Inst. of Tech. Cambridge, MA, United States)
Date Acquired
April 14, 2017
Publication Date
July 29, 2016
Publication Information
Publication: Atmospheric Chemistry and Physics
Publisher: Atmospheric Chemistry and Physics
Volume: 16
Issue: 14
e-ISSN: 1680-7324
Subject Category
Geophysics
Environment Pollution
Report/Patent Number
GSFC-E-DAA-TN41564
Funding Number(s)
CONTRACT_GRANT: NNL16AA05C
CONTRACT_GRANT: NNX08AH69G
CONTRACT_GRANT: NNX16AH33A
CONTRACT_GRANT: NNX14AP38G
CONTRACT_GRANT: NNX11AN72G
CONTRACT_GRANT: NNX15AT34A
CONTRACT_GRANT: NNX15AT96G
CONTRACT_GRANT: NSF-AGS-1144165
Distribution Limits
Public
Copyright
Other

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