Title :
WindSat on-orbit warm load calibration
Author :
Twarog, Elizabeth M. ; Purdy, William E. ; Gaiser, Peter W. ; Cheung, Kwok H. ; Kelm, Bernard E.
Author_Institution :
Naval Res. Lab., Washington, DC, USA
fDate :
3/1/2006 12:00:00 AM
Abstract :
Postlaunch calibration of the WindSat polarimetric microwave radiometer indicates the presence of thermal gradients across the calibration warm load during some portions of the year. These gradients are caused by reflected solar illumination or eclipse and increase total calibration errors. This paper describes the WindSat warm load and presents the measured on-orbit data which clearly illustrate the anomalous responses seen in the warm load calibration data. Detailed thermal modeling predictions of the WindSat on-orbit performance are presented along with the satellite orbital geometry model with solar inputs in order to explain the physical causes of the thermal gradients. To reduce the resultant calibration errors during periods of anomalous warm load behavior, a correction algorithm was developed which uses the physical temperatures of the gain stages in the receiver electronics to calculate an effective gain. This calibration algorithm is described, and its performance and expected accuracy are examined.
Keywords :
calibration; geophysical techniques; microwave measurement; radiometers; remote sensing; WindSat on-orbit warm load calibration; WindSat polarimetric microwave radiometer; correction algorithm; eclipse; effective gain; postlaunch calibration; radiometer calibration; receiver electronics; remote sensing; satellite orbital geometry model; solar illumination; thermal gradients; total calibration errors; Calibration; Electromagnetic heating; Extraterrestrial measurements; Geometry; Lighting; Microwave radiometry; Predictive models; Satellite broadcasting; Solid modeling; Thermal loading; Microwave radiometer; WindSat; radiometer calibration; remote sensing;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2005.863300