Title :
Simulation of Airborne Radar Observations of Precipitating Systems at Various Frequency Bands
Author :
Louf, Valentin ; Pujol, Olivier ; Sauvageot, Henri ; Riedi, Jerome
Author_Institution :
Lab. d´Opt. Atmos., Univ. Lille 1, Villeneuve d´Ascq, France
Abstract :
This paper addresses the question of the most efficient couple (f, θ3dB) for airborne radar precipitating system observations, where f is the microwave frequency and θ3dB is the beamwidth aperture at 3 dB. This problem is of importance. The meteorological hazard in civil aviation is mainly due to convective precipitating systems, particularly hail and strong turbulence areas. A realistic and flexible model of precipitating systems is presented, and simulations of airborne radar observations are performed at the six meteorological frequency bands (S, C, X, Ku, Ka, and W). In this paper, the effect of f and θ3dB modification is shown through radar simulations of two precipitating systems. One is a numerical simulation composed of two successive rows of convective towers; the other is inspired from a real mesoscale system, presenting hail-bearing convective towers. It is shown that some (f, θ3dB) couples are better than the one currently used by civil aviation. Notably, C band allows a better description than X band of a meteorological radar scene if the radar antenna size is increased. The model and methodology presented herein are adaptable to ground-based and satellite radars.
Keywords :
airborne radar; atmospheric precipitation; atmospheric techniques; atmospheric turbulence; convection; hazards; ice; meteorological radar; numerical analysis; radar antennas; remote sensing by radar; C band; Ka band; Ku band; S band; W band; X band; airborne radar observation simulation; airborne radar observation simulations; airborne radar precipitating system observations; beamwidth aperture; civil aviation; convective precipitating systems; frequency bands; ground-based radar; hail area; hail-bearing convective towers; meteorological frequency bands; meteorological hazard; meteorological radar scene; microwave frequency; numerical simulation; precipitating system flexible model; precipitating system realistic model; precipitating systems; radar antenna size; real mesoscale system; satellite radar; strong turbulence area; successive convective tower rows; $theta_{rm 3dB}$-beamwidth; Airborne radar; meteorological hazard; precipitating systems; radar frequency comparison;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2013.2252910