Title :
Effects of precipitation and cloud ice on brightness temperatures in AMSU moisture channels
Author :
Burns, Barbara A. ; Wu, Xiangqian ; Diak, George R.
Author_Institution :
Cooperative Inst. for Meteorol. Satellite Studies, Wisconsin Univ., Madison, WI, USA
fDate :
11/1/1997 12:00:00 AM
Abstract :
Extinction by ice and rain at the AMSU frequencies used in water vapor profile retrievals is investigated with DMSP observations and brightness temperature simulations of a convective storm system. The simulations are based on mesoscale forecast model output of atmospheric, cloud, and rain profiles from which the absorption and scattering due to both liquid and frozen hydrometeors are calculated. Comparison with satellite observations indicates discrepancies of more than 90% (up to 60 K), of which only about 20% results from ignoring scattering by model-prescribed ice. The major source of error is the inability of the forecast model to produce the spatially localized high ice concentrations which cause the low microwave brightness temperatures. A criterion based on the difference between measured brightness temperatures at 183.31±3 and 183.31±1 GHz is suggested to screen out convective events before water vapor retrieval. Application to the case study examined improved agreement between simulated and observed brightness temperatures by up to a factor of two
Keywords :
atmospheric humidity; atmospheric techniques; humidity measurement; millimetre wave measurement; radiometry; remote sensing; 183 GHz; AMSU moisture channels; EHF; atmosphere; cloud ice; convective storm; error; humidity; measurement technique; meteorology; microwave brightness temperature; microwave radiometry; millimetre wave radiometry; mm wave; radiative transfer model; satellite remote sensing; water vapor profile retrieval; water vapour; Atmospheric modeling; Brightness temperature; Clouds; Frequency; Ice; Predictive models; Rain; Scattering; Tropical cyclones; Water storage;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on