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Quantifying the range of the dust direct radiative effect due to source mineralogy uncertaintyThe large uncertainty in the mineral dust direct radiative effect (DRE) hinders projections of future climate change due to anthropogenic activity. Resolving modeled dust mineral speciation allows for spatially and temporally varying refractive indices consistent with dust aerosol composition. Here, for the first time, we quantify the range in dust DRE at the top of the atmosphere (TOA) due to current uncertainties in the surface soil mineralogical content using a dust mineral-resolving climate model. We propagate observed uncertainties in soil mineral abundances from two soil mineralogy atlases along with the optical properties of each mineral into the DRE and compare the resultant range with other sources of uncertainty across six climate models. The shortwave DRE responds region-specifically to the dust burden depending on the mineral speciation and underlying shortwave surface albedo: positively when the regionally averaged annual surface albedo is larger than 0.28 and negatively otherwise. Among all minerals examined, the shortwave TOA DRE and single scattering albedo at the 0.44–0.63 µm band are most sensitive to the fractional contribution of iron oxides to the total dust composition. The global net (shortwave plus longwave) TOA DRE is estimated to be within −0.23 to +0.35 W/sq. m. Approximately 97 % of this range relates to uncertainty in the soil abundance of iron oxides. Representing iron oxide with solely hematite optical properties leads to an overestimation of shortwave DRE by +0.10 W/sq. m at the TOA, as goethite is not as absorbing as hematite in the shortwave spectrum range. Our study highlights the importance of iron oxides to the shortwave DRE: they have a disproportionally large impact on climate considering their small atmospheric mineral mass fractional burden (∼2 %). An improved description of iron oxides, such as those planned in the Earth Surface Mineral Dust Source Investigation (EMIT), is thus essential for more accurate estimates of the dust DRE.
Document ID
20210014112
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Longlei Li
(Cornell University Ithaca, New York, United States)
Natalie M. Mahowald
(Cornell University Ithaca, New York, United States)
Ronald L. Miller ORCID
(Goddard Institute for Space Studies New York, New York, United States)
Carlos Pérez García‐Pando ORCID
(Barcelona Supercomputing Center Barcelona, Spain)
Martina Klose ORCID
(Barcelona Supercomputing Center Barcelona, Spain)
Douglas S. Hamilton ORCID
(Cornell University Ithaca, New York, United States)
Maria Gonçalves Ageitos ORCID
(Barcelona Supercomputing Center Barcelona, Spain)
Paul Ginoux ORCID
(Geophysical Fluid Dynamics Laboratory Princeton, New Jersey, United States)
Yves Balkanski ORCID
(Laboratoire des Sciences du Climat et de l'Environnement Gif-sur-Yvette, France)
Robert O. Green
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Olga Kalashnikova
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Jasper F. Kok ORCID
(University of California, Los Angeles Los Angeles, California, United States)
Vincenzo Obiso
(Columbia University New York, New York, United States)
David Paynter ORCID
(Geophysical Fluid Dynamics Laboratory Princeton, New Jersey, United States)
David R. Thompson ORCID
(Jet Propulsion Lab La Cañada Flintridge, California, United States)
Date Acquired
April 21, 2021
Publication Date
March 17, 2021
Publication Information
Publication: Atmospheric Chemistry and Physics
Publisher: European Geosciences Union / Copernicus Publications
Volume: 21
Issue: 5
Issue Publication Date: March 1, 2021
ISSN: 1680-7316
e-ISSN: 1680-7324
URL: https://acp.copernicus.org/articles/21/3973/2021/#section10
Subject Category
Meteorology And Climatology
Funding Number(s)
CONTRACT_GRANT: NNG14HH42l
WBS: 509496.02.80.01.15
CONTRACT_GRANT: NSF 1552519
CONTRACT_GRANT: EU H2020 789630
CONTRACT_GRANT: ERC 773051
CONTRACT_GRANT: EU H2020 821205
CONTRACT_GRANT: RYC-2015-18690
CONTRACT_GRANT: NUTRIENT: CGL2017-88911-R
Distribution Limits
Public
Copyright
Use by or on behalf of the US Gov. Permitted.
Technical Review
External Peer Committee
Keywords
mineral dust
direct radiative effect (DRE)
projections of future climate change
anthropogenic activity
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