Title :
Flower Constellation of Millimeter-Wave Radiometers for Tropospheric Monitoring at Pseudogeostationary Scale
Author :
Marzano, Frank Silvio ; Cimini, Domenico ; Memmo, Adelaide ; Montopoli, Mario ; Rossi, Tommaso ; De Sanctis, Mauro ; Lucente, Marco ; Mortari, Daniele ; Di Michele, Sabatino
Author_Institution :
Dept. of Electron. Eng., Univ. of Rome "La Sapienza", Rome, Italy
Abstract :
In this paper, the design of a minisatellite FLOwer constellation (FC), deploying millimeter-wave (MMW) scanning RADiometers, namely, FLORAD, and devoted to tropospheric observations, is analyzed and discussed. The FLORAD mission is aimed at the retrieval of thermal and hydrological properties of the troposphere, specifically temperature profile, water-vapor profile, cloud liquid content, and rainfall and snowfall rate. The goal of frequent revisit time at regional scale, coupled with quasi-global coverage and relatively high spatial resolution, is here called pseudogeostationary scale and implemented through a FC of three minisatellites in elliptical orbits. FCs are built on compatible (resonant) orbits and can offer several degrees of freedom in their design. The payload MMW channels for tropospheric retrieval were selected following the ranking based on a reduced-entropy method between 90 and 230 GHz. Various configurations of the MMW radiometer multiband channels are investigated, pointing out the tradeoff between performances and complexity within the constraint of minisatellite platform. Statistical inversion schemes are employed to quantify the overall accuracy of the selected MMW radiometer configurations.
Keywords :
artificial satellites; atmospheric humidity; atmospheric techniques; atmospheric temperature; millimetre wave imaging; radiometers; radiometry; troposphere; FLORAD mission; FLOwer constellation; MMW radiometer configurations; cloud liquid content; hydrological properties retrieval; millimeter-wave radiometers; minisatellite design; pseudogeostationary scale; rainfall rate; reduced-entropy method; snowfall rate; statistical inversion; temperature profile; thermal properties retrieval; troposphere; tropospheric monitoring; water-vapor profile; Atmospheric retrieval; microwave and millimeter-wave radiometry; regional scale; satellite constellations;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2008.2012349