Soil Moisture–Evapotranspiration Overcoupling and L-Band Brightness Temperature Assimilation: Sources and Forecast Implications

Author:

Crow Wade T.1,Gomez Concepcion Arroyo1,Sabater Joaquín Muñoz2,Holmes Thomas3,Hain Christopher R.4,Lei Fangni5,Dong Jianzhi1,Alfieri Joseph G.1,Anderson Martha C.1

Affiliation:

1. a Hydrology and Remote Sensing Laboratory, Agricultural Research Service, USDA, Beltsville, Maryland

2. b European Center for Medium Range Weather Forecasts, Reading, United Kingdom

3. c NASA Goddard Space Flight Center, Greenbelt, Maryland

4. d NASA Marshall Space Flight Center, Huntsville, Alabama

5. e Geosystems Research Institute, Mississippi State University, Starkville, Mississippi

Abstract

AbstractThe assimilation of L-band surface brightness temperature (Tb) into the land surface model (LSM) component of a numerical weather prediction (NWP) system is generally expected to improve the quality of summertime 2-m air temperature (T2m) forecasts during water-limited surface conditions. However, recent retrospective results from the European Centre for Medium-Range Weather Forecasts (ECMWF) suggest that the assimilation of L-band Tb from the European Space Agency’s (ESA) Soil Moisture Ocean Salinity (SMOS) mission may, under certain circumstances, degrade the accuracy of growing-season 24-h T2m forecasts within the central United States. To diagnose the source of this degradation, we evaluate ECMWF soil moisture (SM) and evapotranspiration (ET) forecasts using both in situ and remote sensing resources. Results demonstrate that the assimilation of SMOS Tb broadly improves the ECMWF SM analysis in the central United States while simultaneously degrading the quality of 24-h ET forecasts. Based on a recently derived map of true global SM–ET coupling and a synthetic fraternal twin data assimilation experiment, we argue that the spatial and temporal characteristics of ECMWF SM analyses and ET forecast errors are consistent with the hypothesis that the ECMWF LSM overcouples SM and ET and, as a result, is unable to effectively convert an improved SM analysis into enhanced ET and T2m forecasts. We demonstrate that this overcoupling is likely linked to the systematic underestimation of root-zone soil water storage capacity by LSMs within the U.S. Corn Belt region.

Funder

Earth Sciences Division

Publisher

American Meteorological Society

Subject

Atmospheric Science

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