HR: 09:40h
AN: H21I-06 [Abstracts]
TI: High Resolution Land Surface Modeling with the next generation Land Data Assimilation
Systems
AU: * Kumar, S V
EM: sujay@hsb.gsfc.nasa.gov
AF: UMBC/GEST, Code 614.3, NASA Goddard Space Flight Center, UMBC/GEST, Greenbelt, MD 20771
United States
AU: Eylander, J
EM: John.Eylander@afwa.af.mil
AF: AFWA, HQ Air Force Weather Agency
Air and Space Sciences Directorate, 106 Peacekeeper dr, suite 2N3, Offutt AFB, NE 68113
United States
AU: Peters-Lidard, C
EM: cpeters@hsb.gsfc.nasa.gov
AF: NASA GSFC, Code 614.3, NASA Goddard Space Flight Center, Greenbelt, MD 20771
United States
AB:
Knowledge of land surface processes is important to many real-world applications such as agricultural production, water
resources management, and flood predication. The Air Force Weather Agency (AFWA) has provided the USDA and other customers
global soil moisture and temperature data for the past 30 years using the agrometeorological data assimilation model (now
called AGRMET), merging atmospheric data. Further, accurate initialization of land surface conditions has been shown to
greatly influence and improve weather forecast model and seasonal-to-interannual climate predictions. The AFWA AGRMET model
exploits real time precipitation observations and analyses, global forecast model and satellite data to generate global
estimates of soil moisture, soil temperature and other land surface states at 48km spatial resolution. However, to truly
address the land surface initialization and climate prediction problem, and to mitigate the errors introduced by the
differences in spatial scales of models, representations of land surface conditions need to be developed at the same fine
scales such as that of cloud resolving models. NASA's Goddard Space Flight Center has developed an offline land data
assimilation system known as the Land Information System (LIS) capable of modeling land atmosphere interactions at spatial
resolutions as fine as 1km. LIS provides a software architecture that integrates the use of the state of the art land surface
models, data assimilation techniques, and high performance computing and data management tools. LIS also employs many high
resolution surface parameters such as the NASA Earth Observing System (EOS)-era products. In this study we describe the
development of a next generation high resolution land surface modeling and data assimilation system, combining the
capabilities of LIS and AGRMET. We investigate the influence of high resolution land surface data and observations on the
land surface conditions by comparing with the operational AGRMET outputs.
UR: http://lis.gsfc.nasa.gov
DE: 1800 HYDROLOGY
DE: 1807 Climate impacts
DE: 1843 Land/atmosphere interactions (1218, 1631, 3322)
DE: 1899 General or miscellaneous
SC: Hydrology [H]
MN: Fall Meeting 2005