Assessing Global Present-Day Surface Mass Transport and Glacial Isostatic Adjustment From Inversion of Geodetic Observations

Journal Article (2021)
Author(s)

Yan Jiang (University of Victoria, Geological Survey of Canada)

Xiaoping Wu (California Institute of Technology)

Michiel R. van den Broeke (Universiteit Utrecht)

Peter Kuipers Munneke (Universiteit Utrecht)

Sebastian B. Simonsen (Technical University of Denmark (DTU))

Wouter van der Wal (TU Delft - Civil Engineering & Geosciences, TU Delft - Aerospace Engineering)

Bert L. Vermeersen (TU Delft - Aerospace Engineering, TU Delft - Civil Engineering & Geosciences, NIOZ Royal Netherlands Institute for Sea Research)

Research Group
Physical and Space Geodesy
DOI related publication
https://doi.org/10.1029/2020JB020713 Final published version
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Publication Year
2021
Language
English
Research Group
Physical and Space Geodesy
Journal title
Journal of Geophysical Research: Solid Earth
Issue number
5
Volume number
126
Article number
e2020JB020713
Pages (from-to)
1-19
Downloads counter
397
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Abstract

Long-term monitoring of global mass transport within the Earth system improves our ability to mitigate natural hazards and better understand their relations to climate change. Satellite gravity is widely used to monitor surface mass variations for its unprecedented spatial and temporal coverage. However, the gravity data contain signals from visco-elastic deformation in response to past ice sheet melting, preventing us from extracting signals of present-day surface mass trend (PDMT) directly. Here we present a global inversion scheme that separates PDMT and visco-elastic glacial isostatic adjustment (GIA) signatures by combining satellite gravimetry with satellite altimetry and ground observations. Our inversion provides global dual data coverage that enables a robust separation of PDMT and GIA spherical harmonic coefficients. It has the advantage of providing estimates of Earth's long wavelength deformation signatures and their uncertainties. Our GIA result, along with its uncertainty estimates, can be used in future GRACE processing to better assess the impact of GIA on surface mass change. Our GIA estimates include a rapid GIA uplift in the Southeast Alaska and the Amundsen Sea Embayment, due to the visco-elastic response to recent glacial unloading. We estimate the average surface mass change rate from 2002–2010 to be −203 ± 3 GT·a−1 in Greenland, −126 ± 18 GT·a−1 in Antarctica and, −62 ± 5 GT·a−1 in Alaska. The GIA low degree spherical harmonic coefficients are sensitive to rheological properties in Earth's deep interior. Our low-degree GIA estimates include geocenter motion and (Formula presented.) which provide unique constraints to understand Earth's lower mantle and ice history.

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