Javascript must be enabled to continue!
ITRF2020 seasonal geocenter motion model
View through CrossRef
Precise knowledge of geocenter motion, i.e., the relative motion between the Earth's center of mass (CM) and the center of figure of the Earth's surface (CF), is crucial to high-stakes geodetic applications such as sea level rise monitoring with satellite altimetry or the establishment of regional and global mass budgets with satellite gravimetry. The computation of the latest release of the International Terrestrial Reference Frame, ITRF2020, involved the estimation of a field of seasonal motions for a global network of geodetic stations, expressed with respect to CM, as sensed by Satellite Laser Ranging, from which the translational part represents seasonal geocenter motion. This paper presents two different methods to isolate seasonal geocenter motion from the field of ITRF2020 seasonal station motions, among which a new method based on a direct weighted average of seasonal station motions, with station-specific weights chosen so as to provide a better approximation of CF than the standard network shift approach. The ITRF2020 annual geocenter motion model thus obtained is then compared with other recent geodetic and geophysical estimates. Although different subgroups of estimates with relatively good internal consistency may be identified, the overall scatter of recent geodetic estimates remains at the level of several mm, i.e., close to the amplitude of annual geocenter motion itself. Efforts toward reconciling seasonal geocenter motion estimates therefore still appear necessary. Meanwhile, it would seem safe to assume that seasonal geocenter motion models, in particular those currently used in satellite altimetry and satellite gravimetry, are still uncertain.
Title: ITRF2020 seasonal geocenter motion model
Description:
Precise knowledge of geocenter motion, i.
e.
, the relative motion between the Earth's center of mass (CM) and the center of figure of the Earth's surface (CF), is crucial to high-stakes geodetic applications such as sea level rise monitoring with satellite altimetry or the establishment of regional and global mass budgets with satellite gravimetry.
The computation of the latest release of the International Terrestrial Reference Frame, ITRF2020, involved the estimation of a field of seasonal motions for a global network of geodetic stations, expressed with respect to CM, as sensed by Satellite Laser Ranging, from which the translational part represents seasonal geocenter motion.
This paper presents two different methods to isolate seasonal geocenter motion from the field of ITRF2020 seasonal station motions, among which a new method based on a direct weighted average of seasonal station motions, with station-specific weights chosen so as to provide a better approximation of CF than the standard network shift approach.
The ITRF2020 annual geocenter motion model thus obtained is then compared with other recent geodetic and geophysical estimates.
Although different subgroups of estimates with relatively good internal consistency may be identified, the overall scatter of recent geodetic estimates remains at the level of several mm, i.
e.
, close to the amplitude of annual geocenter motion itself.
Efforts toward reconciling seasonal geocenter motion estimates therefore still appear necessary.
Meanwhile, it would seem safe to assume that seasonal geocenter motion models, in particular those currently used in satellite altimetry and satellite gravimetry, are still uncertain.
Related Results
Center Fixing of Tropical Cyclones Using Uncertainty-Aware Deep Learning Applied to High-Temporal-Resolution Geostationary Satellite Imagery
Center Fixing of Tropical Cyclones Using Uncertainty-Aware Deep Learning Applied to High-Temporal-Resolution Geostationary Satellite Imagery
Abstract
Determining the location of a tropical cyclone’s (TC) surface circulation center—“center fixing”—is a critical first step in the TC-forecasting process, ...
Correcting geocenter motion in GNSS solutions by combining with satellite laser ranging data
Correcting geocenter motion in GNSS solutions by combining with satellite laser ranging data
Abstract
Geocenter motion in GNSS solutions is ill-defined because of the GNSS orbit modeling errors. Especially, the Z geocenter component derived from GNSS data...
DORIS Assessment of the 2020 ITRF Realizations
DORIS Assessment of the 2020 ITRF Realizations
<p>In the context of the 2020 realization of the International Terrestrial Reference Frame, the three IERS Production Centers (DGFI, IGN and JPL) delivered three inde...
Towards an ITRF2020 plate motion model
Towards an ITRF2020 plate motion model
For various geodetic and geophysical applications, users need to have access to a Plate Motion Model (PMM) that is consistent with the ITRF2020 frame. The aim of this paper is to e...
Methodology to Define Design Motion Criteria for Performance of Floating LNG Process Facilities
Methodology to Define Design Motion Criteria for Performance of Floating LNG Process Facilities
Abstract
This paper proposes a generalized methodology to determine motion criteria for required performance of process facilities using the Abadi Floating LNG (A...
ITRF2020 Updates : motivation and expectation
ITRF2020 Updates : motivation and expectation
The ITRF2020 marked considerable innovations compared with previous versions of the ITRF, by modeling nonlinear station motions (seasonal signals and Post-Seismic Deformation &...
The IDS Contribution to the ITRF2020: Preliminary results
The IDS Contribution to the ITRF2020: Preliminary results
<p>To provide its contribution to the next realization of the International Terrestrial Reference Frame (ITRF2020), the International DORIS Service (IDS) plans to com...
Combined IVS contribution to the ITRF2020
Combined IVS contribution to the ITRF2020
<p>The ITRF2020 will be the next official solution of the International Terrestrial Reference Frame and the successor of the currently used frame, i.e., ITRF2014. Bas...

