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Reconstructing GRACE-type time-variable gravity from the Swarm satellites.


ABSTRACT: The Gravity Recovery and Climate Experiment (GRACE) mission has enabled mass changes and transports in the hydrosphere, cryosphere and oceans to be quantified with unprecedented resolution. However, while this legacy is currently being continued with the GRACE Follow-On (GRACE-FO) mission there is a gap of 11 months between the end of GRACE and the start of GRACE-FO which must be addressed. Here we bridge the gap by combining time-variable, low-resolution gravity models derived from European Space Agency's Swarm satellites with the dominating spatial modes of mass variability obtained from GRACE. We show that the noise inherent in unconstrained Swarm gravity solutions is greatly reduced, that basin averages can have root mean square errors reduced to the order of [Formula: see text] of equivalent water height, and that useful information can be retrieved for basins as small as [Formula: see text]. It is found that Swarm data contains sufficient information to inform the leading three global mass modes found in GRACE at the least. By comparing monthly reconstructed maps to GRACE data from December 2013 to June 2017, we suggest the uncertainty of these maps to be [Formula: see text] of equivalent water height.

SUBMITTER: Richter HMP 

PROVIDER: S-EPMC7806766 | biostudies-literature | 2021 Jan

REPOSITORIES: biostudies-literature

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Reconstructing GRACE-type time-variable gravity from the Swarm satellites.

Richter H Maja P HMP   Lück Christina C   Klos Anna A   Sideris Michael G MG   Rangelova Elena E   Kusche Jürgen J  

Scientific reports 20210113 1


The Gravity Recovery and Climate Experiment (GRACE) mission has enabled mass changes and transports in the hydrosphere, cryosphere and oceans to be quantified with unprecedented resolution. However, while this legacy is currently being continued with the GRACE Follow-On (GRACE-FO) mission there is a gap of 11 months between the end of GRACE and the start of GRACE-FO which must be addressed. Here we bridge the gap by combining time-variable, low-resolution gravity models derived from European Spa  ...[more]

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