DocumentCode
745061
Title
Intercomparison of microwave radiative transfer models for precipitating clouds
Author
Smith, Eric A. ; Bauer, Peter ; Marzano, Frank S. ; Kummerow, Christian D. ; McKague, Darren ; Mugnai, Alberto ; Panegrossi, Giulia
Author_Institution
NASA Goddard Space Flight Center, Greenbelt, MD, USA
Volume
40
Issue
3
fYear
2002
fDate
3/1/2002 12:00:00 AM
Firstpage
541
Lastpage
549
Abstract
An intercomparison of microwave multiple scattering radiative transfer codes used in generating databases for satellite rainfall retrieval algorithms has been carried out to ensure that differences obtained from retrieval techniques do not originate from the underlying radiative transfer code employed for the forward modeling. A set of profiles containing liquid water and ice contents of cloud and rain water as well as snow, graupel and pristine ice were distributed to the participants together with a black box routine providing Mie single scattering, atmospheric background absorption and surface emissivity. Simulations were to be carried out for nadir and off-nadir (53.1°) observation angles at frequencies between 10 and 85 GHz. Among the radiative transfer models were two-stream, multiple stream and Monte Carlo models. The results showed that there were two major sources of differences between the codes. 1) If surface reflection/emission was considered isotropic, simulated brightness temperatures were significantly higher than for specular reflection and this effect was most pronounced at nadir observation and over ocean-type surfaces. 2) Flux-type models including delta-scaling could partially compensate for the errors introduced by the two-stream approximation. Largest discrepancies occurred at high frequencies where atmospheric scattering is most pronounced and at nadir observation. If the same surface boundary conditions, the same multiple-stream resolution and the same scaling procedures are used, the models were very close to each other with discrepancies below 1 K
Keywords
atmospheric precipitation; atmospheric radiation; atmospheric techniques; clouds; radiative transfer; remote sensing; 10 to 85 GHz; Mie single scattering; Monte Carlo models; atmospheric background absorption; black box routine; flux-type models; graupel; ice contents; microwave multiple scattering; microwave radiative transfer models; multiple stream models; ocean-type surfaces; precipitating clouds; pristine ice; retrieval techniques; satellite rainfall retrieval algorithms; simulated brightness temperatures nadir observation; snow; surface emissivity; surface reflection/emission; two stream models; underlying radiative transfer code employed; Atmospheric modeling; Frequency; Ice; Information retrieval; Microwave generation; Microwave theory and techniques; Mie scattering; Ocean temperature; Reflection; Sea surface;
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2002.1000314
Filename
1000314
Link To Document