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Insights Into the Size-Resolved Dust Emission From Field Measurements in the Moroccan SaharaThe particle size distribution (PSD) of mineral dust has a strong effect on the impacts of dust on climate. However, our understanding of the emitted dust PSD, including its variability and the fraction of super-coarse dust (diameter >10 µm), remains limited. Here, we provide new insights into the size-resolved dust emission process based on a field campaign performed in the Moroccan Sahara in September 2019 in the context of the FRontiers in dust minerAloGical coMposition and its Effects upoN climaTe (FRAGMENT) project. The obtained dust concentration and diffusive flux PSDs show significant dependencies upon the friction velocity (u*), wind direction and type of event (regular events versus haboob events). For instance, the number fraction of sub-micrometre particles increases with u*, along with a large decrease in the mass fraction of super-coarse dust. We identify dry deposition, which is modulated by u* and fetch length, as a potential cause for this PSD variability. Using a resistance model constrained with field observations to estimate the dry deposition flux and thereby also the emitted dust flux, we show that deposition could represent up to ∼90 % of the emission of super-coarse particles (>10 µm) and up to ∼65 % of the emission of particles as small as ∼5 µm in diameter. Importantly, removing the deposition component significantly reduces the variability with u* in the PSD of the emitted dust flux compared with the diffusive flux, particularly for super-coarse dust. The differences between regular and haboob event concentration and diffusive flux PSDs are suspected to result from a smaller and variable dust source fetch during the haboob events, and/or an increased resistance of soil aggregates to fragmentation associated with the observed increase in relative humidity along the haboob outflow. Finally, compared to the invariant emitted dust flux PSD estimated based on brittle fragmentation theory, we obtain a substantially higher proportion of super-micrometre particles in the dust flux. Overall, our results suggest that dry deposition needs to be adequately considered to estimate the emitted PSD, even in studies limited to the fine and coarse size ranges (<10 µm).
Document ID
20230011801
Acquisition Source
Goddard Space Flight Center
Document Type
Reprint (Version printed in journal)
Authors
Cristina González-Flórez
(Barcelona Supercomputing Center Barcelona, Spain)
Martina Klose ORCID
(Institute of Meteorology and Climate Research Barcelona, Spain)
Andrés Alastuey
(Institute of Environmental Assessment and Water Research Barcelona, Spain)
Sylvain Dupont
(École Nationale Supérieure des Sciences Agronomiques de Bordeaux-Aquitaine Gradignan, France)
Jerónimo Escribano
(Barcelona Supercomputing Center Barcelona, Spain)
Vicken Etyemezian
(Desert Research Institute Reno, Nevada, United States)
Adolfo Gonzalez-Romero
(Barcelona Supercomputing Center Barcelona, Spain)
Yue Huang
(Goddard Institute for Space Studies New York, New York, United States)
Konrad Kandler
(Institute for Applied Geosciences Bishkek, Kyrgyzstan)
George Nikolich
(Desert Research Institute Reno, Nevada, United States)
Agnesh Panta
(Institute for Applied Geosciences )
Xavier Quero
(Institute of Environmental Assessment and Water Research Barcelona, Spain)
Cristina Reche
(Institute of Environmental Assessment and Water Research Barcelona, Spain)
Jesús Yus-Díez
(Institute of Environmental Assessment and Water Research Barcelona, Spain)
Carlos Pérez García‐Pando ORCID
(Barcelona Supercomputing Center Barcelona, Spain)
Date Acquired
August 9, 2023
Publication Date
June 29, 2023
Publication Information
Publication: Atmospheric Chemistry and Physics
Publisher: European Geosciences Union
Volume: 23
Issue: 12
Issue Publication Date: June 19, 2023
ISSN: 680-7316
e-ISSN: 1680-7324
Subject Category
Meteorology and Climatology
Chemistry and Materials (General)
Physics (General)
Funding Number(s)
CONTRACT_GRANT: 600.0 Visiting Research
CONTRACT_GRANT: 773051
CONTRACT_GRANT: 2020-FI-B 00678
CONTRACT_GRANT: VH-NG-1533
CONTRACT_GRANT: 264907654
CONTRACT_GRANT: 416816480
CONTRACT_GRANT: EAR1124609
Distribution Limits
Public
Copyright
Portions of document may include copyright protected material.
Technical Review
External Peer Committee
Keywords
particle size distribution
climate impact
Moroccan Sahara
FRontiers in dust minerAloGical coMposition and its Effects upoN climaTe
dust measurement
atmospheric mineral dust
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