HR: 1340h
AN: G53A-0122 [Abstracts]
TI: Can Continental and Ocean Water Mass Variability from Satellite Gravimetery be Used to Correct for the
Loading Signal in Geodetic Time Series?
AU: * van Dam, T
EM: tvd@ecgs.lu
AF: European Center for Geodynamics and Seismology, 19 Rue Josy Welter, Walferdange, L-7256
Luxembourg
AU: Wahr, J
EM: wahr@lemond.colorado.edu
AF: Dept. of Physics and CIRES, University of Colorado, Boulder, Campus Box 216, Boulder, CO 80309
United States
AU: Lavallee, D
EM: D.A.Lavallee@newcastle.ac.uk
AF: School of Civil Engineering and Geosciences, University of Newcastle upon Tyne, Cassie Building,
Newcastle upon Tyne, NE1 7RU
United Kingdom
AU: Clarke, P
EM: Peter.Clarke@ncl.ac.uk
AF: School of Civil Engineering and Geosciences, University of Newcastle upon Tyne, Cassie Building,
Newcastle upon Tyne, NE1 7RU
United Kingdom
AB:
Model estimates of the annual variations in continental water storage are of sufficient
magnitude to induce peak-to-peak changes in the vertical position of geodetic stations
of up to 3 cm seasonally. Signals of this magnitude need to be removed from the geodetic data if
the geodetic trend is to be interpreted in terms of geodynamic processes.
Unfortunately, considerable errors are probably present in the model-derived water
storage estimates due to errors in the model forcing, parameters and model formulation.
If these models are used to correct the geodetic data, it is likely that the
continental water storage signal is being improperly removed from the geodetic
data sets.
A number of satellite gravity missions have been recently launched, or will come
online in the near future, that will measure changes in Earth's surface
hydrology with unprecedented accuracy. Gravity missions such as CHAMP, GRACE and GOCE,
and other satellite missions have the potential to significantly improve our understanding
of many hydrologic processes, as well as improving our
ability to monitor and predict the partitioning of continental water mass into
snow, precipitation, soil moisture and ground water.
In this paper, we investigate the possibility that estimates of water storage
variations derived from satellite gravity missions can be used to correct
geodetic data for the long wavelength component of the water storage signal.
DE: 1836 Hydrologic budget (1655)
DE: 1223 Ocean/Earth/atmosphere interactions (3339)
DE: 1294 Instruments and techniques
DE: 1299 General or miscellaneous
SC: Geodesy [G]
MN: 2004 AGU Fall Meeting