Optical and geometrical aerosol particle properties over the United Arab Emirates
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Published:2020-07-27
Issue:14
Volume:20
Page:8909-8922
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ISSN:1680-7324
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Container-title:Atmospheric Chemistry and Physics
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language:en
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Short-container-title:Atmos. Chem. Phys.
Author:
Filioglou MariaORCID, Giannakaki Elina, Backman JohnORCID, Kesti JuttaORCID, Hirsikko Anne, Engelmann Ronny, O'Connor EwanORCID, Leskinen Jari T. T., Shang XiaoxiaORCID, Korhonen HanneleORCID, Lihavainen HeikkiORCID, Romakkaniemi SamiORCID, Komppula Mika
Abstract
Abstract. One year of ground-based night-time Raman lidar observations has been analysed under the Optimization of Aerosol Seeding In
rain enhancement Strategies (OASIS) project, in order to characterize the
aerosol particle properties over a rural site in the United Arab Emirates.
In total, 1130 aerosol particle layers were detected during the 1-year measurement campaign which took place between March 2018 and February 2019.
Several subsequent aerosol layers could be observed simultaneously in the
atmosphere up to 11 km. The observations indicate that the measurement site
is a receptor of frequent dust events, but predominantly the dust is mixed with aerosols of anthropogenic and/or marine origin. The mean aerosol
optical depth over the measurement site ranged at 0.37 ± 0.12 and
0.21 ± 0.11 for 355 and 532 nm, respectively. Moreover, mean lidar ratios of 43 ± 11 sr at a wavelength of 355 nm and 39 ± 10 sr at 532 nm were found. The average linear particle depolarization ratio
measured over the course of the campaign was 15 ± 6 % and
19 ± 7 % at the 355 and 532 nm wavelengths, respectively. Since the region is both a source and a receptor of mineral dust, we have also
explored the properties of Arabian mineral dust of the greater area of the United Arab of Emirates and the Arabian Peninsula. The observed Arabian dust
particle properties were 45 ± 5 (42 ± 5) sr at 355 (532) nm
for the lidar ratio, 25 ± 2 % (31 ± 2 %) for the linear
particle depolarization ratio at 355 (532) nm, and 0.3 ± 0.2
(0.2 ± 0.2) for the extinction-related Ångström exponent
(backscatter-related Ångström exponent) between 355 and 532 nm. This
study is the first to report comprehensive optical properties of the Arabian
dust particles based on 1-year long observations, using to their fullest the capabilities of a multi-wavelength Raman lidar instrument. The results suggest that the mineral dust properties over the Middle East and western
Asia, including the observation site, are comparable to those of African
mineral dust with regard to the particle depolarization ratios, but not for lidar ratios. The smaller lidar ratio values in this study compared to the
reference studies are attributed to the difference in the geochemical
characteristics of the soil originating in the study region compared to
northern Africa.
Funder
H2020 European Research Council Biotieteiden ja Ympäristön Tutkimuksen Toimikunta
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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