A physically-based parametric model (PPM) to predict the sky-noise temperature in all weather conditions is proposed. The proposed prediction model is based on the non-linear regression fit of numerical simulations derived from the sky-noise eddington radiative-transfer model (SNEM) in an absorbing and scattering medium such as gaseous, cloudy and rainy atmosphere. The PPM prediction method, dependent on measured path attenuation, beacon frequency, and antenna-pointing elevation angle, describes the statistical behavior of the atmospheric mean radiative temperature, which in its turn relates sky-noise temperature to slant-path attenuation. PPM validity ranges from X- to W- band and from 10 degrees to 90 degrees in terms of elevation angle. ...
The effects of the scattering troposphere on propagating signals are important for sever...
The objective of this paper is to characterize the atmospheric radiometeorological parameters (optic...
In order to keep up with the demand for new services, future satellite-to-ground communications will...
Model-oriented methods to predict antenna noise temperature due to rainfall along slant paths are de...
Abstract—A characterization of the antenna noise temperature due to precipitating clouds at Ku band ...
A characterization of the antenna noise temperature due to precipitating clouds at Ku band and above...
The mean radiative temperature (Tmr) is a key function controlling the sky noise temperature in micr...
A physically-oriented statistical prediction of sky-noise temperature intercepted by ground Deep-Spa...
A physically-oriented statistical prediction of sky-noise temperature intercepted by ground Deep-Sp...
With the move of satellite systems towards Ka and Q/V bands, the Alphasat TDP5 Aldo Paraboni scienti...
The aim of this work is to present a parametric model for the prediction of the down-welling ...
With the move of satellite systems towards Ka and Q/V bands, the Alphasat TDP5 Aldo Paraboni scienti...
Attenuation of radio frequency signal by clouds, snow and in particular, rains have to be considered...
Modelling atmospheric processes is a crucial point for several radiocommunication applications. Fo...
In this work, several sources are used to characterize, in both deterministic and statistical ways, ...
The effects of the scattering troposphere on propagating signals are important for sever...
The objective of this paper is to characterize the atmospheric radiometeorological parameters (optic...
In order to keep up with the demand for new services, future satellite-to-ground communications will...
Model-oriented methods to predict antenna noise temperature due to rainfall along slant paths are de...
Abstract—A characterization of the antenna noise temperature due to precipitating clouds at Ku band ...
A characterization of the antenna noise temperature due to precipitating clouds at Ku band and above...
The mean radiative temperature (Tmr) is a key function controlling the sky noise temperature in micr...
A physically-oriented statistical prediction of sky-noise temperature intercepted by ground Deep-Spa...
A physically-oriented statistical prediction of sky-noise temperature intercepted by ground Deep-Sp...
With the move of satellite systems towards Ka and Q/V bands, the Alphasat TDP5 Aldo Paraboni scienti...
The aim of this work is to present a parametric model for the prediction of the down-welling ...
With the move of satellite systems towards Ka and Q/V bands, the Alphasat TDP5 Aldo Paraboni scienti...
Attenuation of radio frequency signal by clouds, snow and in particular, rains have to be considered...
Modelling atmospheric processes is a crucial point for several radiocommunication applications. Fo...
In this work, several sources are used to characterize, in both deterministic and statistical ways, ...
The effects of the scattering troposphere on propagating signals are important for sever...
The objective of this paper is to characterize the atmospheric radiometeorological parameters (optic...
In order to keep up with the demand for new services, future satellite-to-ground communications will...