DocumentCode
1505635
Title
A Case Study of Using a Multilayered Thermodynamical Snow Model for Radiance Assimilation
Author
Toure, Ally M. ; Goïta, Kalifa ; Royer, Alain ; Kim, Edward J. ; Durand, Michael ; Margulis, Steven A. ; Lu, Huizhong
Author_Institution
Global Modeling & Assimilation Office, Nat. Aeronaut. & Space Adm. Goddard Space Flight Center, Greenbelt, MD, USA
Volume
49
Issue
8
fYear
2011
Firstpage
2828
Lastpage
2837
Abstract
A microwave radiance assimilation (RA) scheme for the retrieval of snow physical state variables requires a snowpack physical model (SM) coupled to a radiative transfer model. In order to assimilate microwave brightness temperatures (Tbs) at horizontal polarization (h-pol), an SM capable of resolving melt-refreeze crusts is required. To date, it has not been shown whether an RA scheme is tractable with the large number of state variables present in such an SM or whether melt-refreeze crust densities can be estimated. In this paper, an RA scheme is presented using the CROCUS SM which is capable of resolving melt-refreeze crusts. We assimilated both vertical (v) and horizontal (h) Tbs at 18.7 and 36.5 GHz. We found that assimilating Tb at both h-pol and vertical polarization (v-pol) into CROCUS dramatically improved snow depth estimates, with a bias of 1.4 cm compared to -7.3 cm reported by previous studies. Assimilation of both h-pol and v-pol led to more accurate results than assimilation of v-pol alone. The snow water equivalent (SWE) bias of the RA scheme was 0.4 cm, while the bias of the SWE estimated by an empirical retrieval algorithm was -2.9 cm. Characterization of melt-refreeze crusts via an RA scheme is demonstrated here for the first time; the RA scheme correctly identified the location of melt-refreeze crusts observed in situ.
Keywords
data assimilation; freezing; hydrological techniques; melting; microwave measurement; remote sensing; snow; CROCUS SM; frequency 18.7 GHz; frequency 36.5 GHz; horizontal microwave brightness temperature; melt-refreeze crust density estimation; microwave brightness temperature assimilation; microwave radiance assimilation scheme; multilayered thermodynamical snow model; radiative transfer model; snow physical state variable retrieval; snow water equivalent; snowpack physical model; vertical microwave brightness temperature; Azimuth; Data models; Grain size; Ice; Predictive models; Snow; Temperature measurement; Assimilation; melt–refreeze crusts; radiance; snow; snowpack model (SM);
fLanguage
English
Journal_Title
Geoscience and Remote Sensing, IEEE Transactions on
Publisher
ieee
ISSN
0196-2892
Type
jour
DOI
10.1109/TGRS.2011.2118761
Filename
5756663
Link To Document