Title :
Retrieval of Atmospheric Integrated Water Vapor and Cloud Liquid Water Content Over the Ocean From Satellite Data Using the 1-D-Var Ice Cloud Microphysics Data Assimilation System (IMDAS)
Author :
MIRZA, Cyrus Raza ; Koike, Toshio ; Yang, Kun ; Graf, Tobias
Author_Institution :
Univ. of Tokyo, Tokyo
Abstract :
Reliable prediction of precipitation by numerical weather prediction (NWP) models depends on the appropriate representation of cloud microphysical processes and accurate initial conditions of observations of atmospheric variables. Therefore, to retrieve reasonable cloud distributions, a 1-D variational Ice Cloud Microphysics Data Assimilation System (IMDAS) is developed to improve the predictability of NWP models. The general framework of IMDAS includes the Lin ice cloud microphysics scheme as a model operator, a four-stream fast microwave radiative transfer model in the atmosphere as an observation operator, and a global minimization method that is known as the shuffled complex evolution. IMDAS assimilates the satellite microwave radiometer data set of the Advanced Microwave Scanning Radiometer for the Earth Observing System (AMSR-E) and retrieves integrated water vapor and integrated cloud liquid water content. This new method successfully introduces heterogeneity into the initial state of the atmosphere, and the modeled microwave brightness temperatures agree well with the observations of the Wakasa Bay Experiment 2003 in Japan. It has significantly improved the performance of the cloud microphysics scheme by the intrusion of heterogeneity into the external global reanalysis data, which resultantly improved atmospheric initial conditions.
Keywords :
atmospheric humidity; atmospheric precipitation; atmospheric techniques; clouds; radiative transfer; remote sensing; weather forecasting; 1D variational Ice Cloud Microphysics Data Assimilation System; AD 2003; AMSR-E; Advanced Microwave Scanning Radiometer; Earth Observing System; IMDAS; Japan; Wakasa Bay Experiment; atmospheric integrated water vapor; atmospheric precipitation prediction; atmospheric variable observation; cloud distribution; cloud microphysical process; integrated cloud liquid water content; microwave radiative transfer model; numerical weather prediction models; satellite data; satellite microwave radiometer data; Atmospheric modeling; Clouds; Content based retrieval; Data assimilation; Ice; Information retrieval; Microwave theory and techniques; Oceans; Predictive models; Satellite broadcasting; Cloud microphysics; Lin ice microphysics scheme; data assimilation; integrated cloud liquid water content (ICLWC); integrated water vapor (IWV); remote sensing;
Journal_Title :
Geoscience and Remote Sensing, IEEE Transactions on
DOI :
10.1109/TGRS.2007.907740