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Contribution of the World's Main Dust Source Regions to the Global Cycle of Desert Dust

Authors :
Jasper F. Kok
Adeyemi A. Adebiyi
Samuel Albani
Yves Balkanski
Ramiro Checa-Garcia
Mian Chin
Peter R Colarco
Douglas S. Hamilton
Yue Huang
Akinori Ito
Martina Klose
Longlei Li
Natalie M. Mahowald
Ron L Miller
Vincenzo Obiso
Carlos Pérez García-Pando
Adriana Rocha Lima
Jessica S. Wan
Source :
Atmospheric Chemistry and Physics. 21(10)
Publication Year :
2021
Publisher :
United States: NASA Center for Aerospace Information (CASI), 2021.

Abstract

Even though desert dust is the most abundant aerosol by mass in Earth's atmosphere, the relative contributions of the world's major source regions to the global dust cycle remain poorly constrained. This problem hinders accounting for the potentially large impact of regional differences in dust properties on clouds, the Earth's energy balance, and terrestrial and marine biogeochemical cycles. Here, we constrain the contribution of each of the world's main dust source regions to the global dust cycle. We use an analytical framework that integrates an ensemble of global aerosol model simulations with observationally informed constraints on the dust size distribution, extinction efficiency, and regional dust aerosol optical depth (DAOD). We obtain a dataset that constrains the relative contribution of nine major source regions to size-resolved dust emission, atmospheric loading, DAOD, concentration, and deposition flux. We find that the 22–29 Tg (1 standard error range) global loading of dust with a geometric diameter up to 20 µm is partitioned as follows: North African source regions contribute ∼ 50 % (11–15 Tg), Asian source regions contribute ∼ 40 % (8–13 Tg), and North American and Southern Hemisphere regions contribute ∼ 10 % (1.8–3.2 Tg). These results suggest that current models on average overestimate the contribution of North African sources to atmospheric dust loading at ∼ 65 %, while underestimating the contribution of Asian dust at ∼ 30 %. Our results further show that each source region's dust loading peaks in local spring and summer, which is partially driven by increased dust lifetime in those seasons. We also quantify the dust deposition flux to the Amazon rainforest to be ∼ 10 Tg yr−1, which is a factor of 2–3 less than inferred from satellite data by previous work that likely overestimated dust deposition by underestimating the dust mass extinction efficiency. The data obtained in this paper can be used to obtain improved constraints on dust impacts on clouds, climate, biogeochemical cycles, and other parts of the Earth system.

Subjects

Subjects :
Meteorology And Climatology

Details

Language :
English
ISSN :
16807324 and 16807316
Volume :
21
Issue :
10
Database :
NASA Technical Reports
Journal :
Atmospheric Chemistry and Physics
Notes :
NNG14HH42l, , NNH16ZDA001N-ACMAP, , NNH15CO48B, , 509496.02.80.01.15, , SAA-31389, , J-090007, , NNX15AT34A, , NSF 1552519, , NSF 1856389, , W911NF-20-2-0150, , MS-C 708119, , MS-C 789630, , CRESCENDO 641816, , 20H04329, , JPMXD0717935715, , NNG14HH42I, , URC 773051, , 80NSSC19K1346, , FORCES 821205, , RYC-2015-18690, , CGL2017-88911-R, , EV-I E678605, , ANR-15-CE04-0005
Publication Type :
Report
Accession number :
edsnas.20210016437
Document Type :
Report
Full Text :
https://doi.org/10.5194/acp-21-8169-2021