DocumentCode :
764952
Title :
Retrievals of profiles of fine and coarse aerosols using lidar and radiometric space measurements
Author :
Kaufman, Yoram J. ; Tanré, Didier ; Léon, Jean-François ; Pelon, Jacques
Author_Institution :
Goddard Space Flight Center, Greenbelt, MD, USA
Volume :
41
Issue :
8
fYear :
2003
Firstpage :
1743
Lastpage :
1754
Abstract :
The Cloud-Aerosol Lidar and Infrared Pathfinder Satellite Observations (CALIPSO) spaceborne lidar, expected to be launched in 2004, will collect profiles of the lidar attenuated backscattering coefficients of aerosol and clouds at 0.53 and 1.06 μm. The measurements are sensitive to the vertical distribution of aerosols. However, the information is insufficient to be mapped into unique aerosol physical properties and vertical distribution. Spectral radiances measured by the Moderate Resolution Imaging Spectrometer (MODIS) on the Aqua spacecraft, acquired simultaneously with the CALIPSO observations, can constrain the solutions. The combination of the MODIS and CALIPSO data can be used to derive extinction profiles of the fine and coarse modes of the aerosol size distribution for aerosol optical thickness of 0.1 and larger. Here we describe a new inversion method developed to invert simultaneously MODIS and CALIPSO data over glint-free ocean. The method is applied to aircraft lidar and MODIS data collected over a dust storm off the coast of West Africa during the Saharan Dust Experiment (SHADE). The backscattering-to-extinction ratio (BER) (BER=ωoP(180)/4π) can be retrieved from the synergism between measurements avoiding a priori hypotheses required for inverting lidar measurements alone. For dust, the resultant value of BER =0.016 sr-1 is over 50% smaller than what is expected using Mie theory, but in good agreement with recent results obtained from Raman lidar observations of dust episodes. The inversion is robust in the presence of 10% and 20% noise in the lidar signal at 0.53 and 1.06 μm, respectively. Calibration errors of the lidar of 5% to 10% can cause an error in optical thickness of 20% to 40%, respectively, in the tested cases.
Keywords :
aerosols; air pollution measurement; atmospheric composition; atmospheric optics; atmospheric techniques; clouds; optical radar; remote sensing; remote sensing by laser beam; 1060 nm; 530 nm; CALIPSO; Cloud Aerosol Lidar and Infrared Pathfinder Satellite Observations; MODIS; air pollution; atmosphere; backscattering coefficients; cloud; coarse aerosol; extinction profiles; fine aerosol; inverse problem; inversion method; laser remote sensing; measurement technique; meteorology; optical property; optical thickness; optics; physical properties; radiometry; satellite remote sensing; size distribution; spaceborne lidar; vertical distribution; vertical profile; Aerosols; Bit error rate; Extraterrestrial measurements; Laser radar; MODIS; Optical attenuators; Optical noise; Optical sensors; Radiometry; Sea measurements;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2003.814138
Filename :
1221767
Link To Document :
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