Experimental techniques for the calibration of lidar depolarization channels in EARLINET
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Published:2018-02-26
Issue:2
Volume:11
Page:1119-1141
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ISSN:1867-8548
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Container-title:Atmospheric Measurement Techniques
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language:en
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Short-container-title:Atmos. Meas. Tech.
Author:
Belegante Livio, Bravo-Aranda Juan AntonioORCID, Freudenthaler Volker, Nicolae Doina, Nemuc Anca, Ene DragosORCID, Alados-Arboledas LucasORCID, Amodeo Aldo, Pappalardo Gelsomina, D'Amico GiuseppeORCID, Amato Francesco, Engelmann Ronny, Baars HolgerORCID, Wandinger Ulla, Papayannis AlexandrosORCID, Kokkalis Panos, Pereira Sérgio N.
Abstract
Abstract. Particle depolarization ratio retrieved from lidar measurements are commonly used for aerosol-typing studies, microphysical inversion, or mass concentration retrievals. The particle depolarization ratio is one of the primary parameters that can differentiate several major aerosol components but only if the measurements are accurate enough. The accuracy related to the retrieval of particle depolarization ratios is the driving factor for assessing and improving the uncertainties of the depolarization products. This paper presents different depolarization calibration procedures used to improve the quality of the depolarization data. The results illustrate a significant improvement of the depolarization lidar products for all the selected lidar stations that have implemented depolarization calibration procedures. The calibrated volume and particle depolarization profiles at 532 nm show values that fall within a range that is generally accepted in the literature.
Funder
Seventh Framework Programme
Publisher
Copernicus GmbH
Subject
Atmospheric Science
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