Orbit-related sea level errors for TOPEX altimetry at seasonal to decadal timescales
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Published:2018-03-15
Issue:2
Volume:14
Page:205-223
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ISSN:1812-0792
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Container-title:Ocean Science
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language:en
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Short-container-title:Ocean Sci.
Author:
Esselborn SaskiaORCID, Rudenko SergeiORCID, Schöne TiloORCID
Abstract
Abstract. Interannual to decadal sea level trends are indicators of climate variability
and change. A major source of global and regional sea level data is satellite
radar altimetry, which relies on precise knowledge of the satellite's orbit.
Here, we assess the error budget of the radial orbit component for the
TOPEX/Poseidon mission for the period 1993 to 2004 from a set of different
orbit solutions. The errors for seasonal, interannual (5-year), and decadal
periods are estimated on global and regional scales based on radial orbit
differences from three state-of-the-art orbit solutions provided by different
research teams: the German Research Centre for Geosciences (GFZ), the Groupe de
Recherche de Géodésie Spatiale (GRGS), and the Goddard Space Flight Center
(GSFC). The global mean sea level error related
to orbit uncertainties is of the order of 1 mm (8 % of the global mean sea
level variability) with negligible contributions on the annual and decadal
timescales. In contrast, the orbit-related error of the interannual trend is
0.1 mm yr−1 (27 % of the corresponding sea level variability) and might
hamper the estimation of an acceleration of the global mean sea level rise.
For regional scales, the gridded orbit-related error is up to 11 mm, and for
about half the ocean the orbit error accounts for at least 10 % of the
observed sea level variability. The seasonal orbit error amounts to 10 %
of the observed seasonal sea level signal in the Southern Ocean. At
interannual and decadal timescales, the orbit-related trend uncertainties
reach regionally more than 1 mm yr−1. The interannual trend errors account
for 10 % of the observed sea level signal in the tropical Atlantic and the
south-eastern Pacific. For decadal scales, the orbit-related trend errors are
prominent in a several regions including the South Atlantic, western North
Atlantic, central Pacific, South Australian Basin, and the Mediterranean Sea.
Based on a set of test orbits calculated at GFZ, the sources of the observed
orbit-related errors are further investigated. The main contributors on all
timescales are uncertainties in Earth's time-variable gravity field models and on
annual to interannual timescales discrepancies of the tracking station
subnetworks, i.e. satellite laser ranging (SLR) and Doppler
Orbitography and Radiopositioning Integrated by Satellite (DORIS).
Funder
European Space Agency Deutsche Forschungsgemeinschaft
Publisher
Copernicus GmbH
Subject
Cell Biology,Developmental Biology,Embryology,Anatomy
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