DocumentCode :
891436
Title :
Modeling antenna noise temperature due to rain clouds at microwave and Millimeter-wave frequencies
Author :
Marzano, Frank Silvio
Author_Institution :
Dept. of Electron. Eng., Univ. "La Sapienza" of Rome, Italy
Volume :
54
Issue :
4
fYear :
2006
fDate :
4/1/2006 12:00:00 AM
Firstpage :
1305
Lastpage :
1317
Abstract :
A characterization of the antenna noise temperature due to precipitating clouds at Ku band and above is described by deriving a closed-form solution of the scalar radiative transfer equation. Following the so called Eddington approximation, the analytical model is based on the truncated expansion of unpolarized brightness temperature angular spectrum in terms of Legendre polynomials. The accuracy of the sky-noise Eddington model (SNEM) is evaluated by comparing it with an accurate numerical solution, taking into consideration a wide variability of medium optical parameters as well as a typical rain slab model. The effect of the antenna pattern for ground-based antennas is also quantified. Physically-based radiative cloud models, characterized by a vertically-inhomogeneous geometry, are also introduced. Hydrometeor optical parameters are calculated and modeled for a large set of beacon channel frequencies. Nimbostratus and cumulonimbus models are finally applied to SNEM for simulating slant-path attenuation and antenna noise temperatures for ground-based antennas. Results are compared with ITALSAT satellite receiver measurements and co-located radiometric data between 13.0 and 49.5 GHz for various rain events during 1998.
Keywords :
Legendre polynomials; antenna radiation patterns; antenna theory; clouds; hydrometers; microwave antennas; millimetre wave antennas; polynomial approximation; rain; Eddington approximation; Ku band; Legendre polynomial; SNEM; antenna noise temperature; antenna pattern; closed-form solution; ground-based antenna; microwave frequency; millimeter-wave frequency; physically-based radiative cloud model; rain slab model; scalar radiative transfer equation; sky-noise Eddington model; slant-path attenuation; vertically-inhomogeneous geometry; Closed-form solution; Clouds; Equations; Frequency; Microwave antennas; Optical attenuators; Optical noise; Optical receivers; Rain; Temperature; Antenna noise temperature; clouds and rainfall; radio propagation; scattering; sky noise temperature;
fLanguage :
English
Journal_Title :
Antennas and Propagation, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-926X
Type :
jour
DOI :
10.1109/TAP.2005.872571
Filename :
1614188
Link To Document :
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