DocumentCode :
1489410
Title :
Effect of Thin Cirrus Clouds on Dust Optical Depth Retrievals From MODIS Observations
Author :
Feng, Qian ; Hsu, N. Christina ; Yang, Ping ; Tsay, Si-Chee
Author_Institution :
Dept. of Atmos. Sci., Texas A&M Univ., College Station, TX, USA
Volume :
49
Issue :
8
fYear :
2011
Firstpage :
2819
Lastpage :
2827
Abstract :
The effect of thin cirrus clouds in retrieving the dust optical depth from MODIS observations is investigated by using a simplified aerosol retrieval algorithm based on the principles of the Deep Blue aerosol property retrieval method. Specifically, the errors of the retrieved dust optical depth due to thin cirrus contamination are quantified through the comparison of two retrievals by assuming dust-only atmospheres and the counterparts with overlapping mineral dust and thin cirrus clouds. To account for the effect of the polarization state of radiation field on radiance simulation, a vector radiative transfer model is used to generate the lookup tables. In the forward radiative transfer simulations involved in generating the lookup tables, the Rayleigh scattering by atmospheric gaseous molecules and the reflection of the surface assumed to be Lambertian are fully taken into account. Additionally, the spheroid model is utilized to account for the nonsphericity of dust particles in computing their optical properties. For simplicity, the single-scattering albedo, scattering phase matrix, and optical depth are specified a priori for thin cirrus clouds assumed to consist of droxtal ice crystals. The present results indicate that the errors in the retrieved dust optical depths due to the contamination of thin cirrus clouds depend on the scattering angle, underlying surface reflectance, and dust optical depth. Under heavy dusty conditions, the absolute errors are comparable to the predescribed optical depths of thin cirrus clouds.
Keywords :
Rayleigh scattering; aerosols; albedo; atmospheric optics; atmospheric techniques; clouds; dust; ice; light polarisation; radiative transfer; radiometry; remote sensing; Deep Blue aerosol property retrieval method; Lambertian surface reflection; MODIS observations; Rayleigh scattering; atmospheric gaseous molecules; droxtal ice crystals; dust only atmosphere assumption; dust optical depth retrieval; dust particle nonsphericity; dust particle optical properties; forward radiative transfer simulations; lookup table generation; mineral dust; radiance simulation; radiation field polarization state effects; scattering phase matrix; simplified aerosol retrieval algorithm; single scattering albedo; spheroid model; thin cirrus cloud effects; thin cirrus contamination; vector radiative transfer model; Aerosols; Atmospheric modeling; Clouds; MODIS; Optical scattering; Optical sensors; Table lookup; Dust aerosols; MODIS; optical depth; thin cirrus;
fLanguage :
English
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
Publisher :
ieee
ISSN :
0196-2892
Type :
jour
DOI :
10.1109/TGRS.2011.2118762
Filename :
5743000
Link To Document :
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