A kinematic formalism for tracking ice–ocean mass exchange on the Earth's surface and estimating sea-level change
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Published:2020-09-02
Issue:9
Volume:14
Page:2819-2833
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ISSN:1994-0424
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Container-title:The Cryosphere
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language:en
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Short-container-title:The Cryosphere
Author:
Adhikari SurendraORCID, Ivins Erik R.ORCID, Larour Eric, Caron Lambert, Seroussi HeleneORCID
Abstract
Abstract. Polar ice sheets are important components of the Earth system. As the geometries of land, ocean and ice sheets evolve, they must be consistently
captured within the lexicon of geodesy. Understanding the interplay between the processes such as ice-sheet dynamics, solid-Earth deformation, and
sea-level adjustment requires both geodetically consistent and mass-conserving descriptions of evolving land and ocean domains, grounded ice sheets
and floating ice shelves, and their respective interfaces. Here we present mathematical descriptions of a generic level set that can be used to
track both the grounding lines and coastlines, in light of ice–ocean mass exchange and complex feedbacks from the solid Earth and sea level. We next
present a unified method to accurately compute the sea-level contribution of evolving ice sheets based on the change in ice thickness, bedrock
elevation and mean sea level caused by any geophysical processes. Our formalism can be applied to arbitrary geometries and at all timescales. While
it can be used for applications with modeling, observations and the combination of two, it is best suited for Earth system models, comprising ice
sheets, solid Earth and sea level, that seek to conserve mass.
Funder
California Institute of Technology
Publisher
Copernicus GmbH
Subject
Earth-Surface Processes,Water Science and Technology
Reference53 articles.
1. Adhikari, S., Ivins, E. R., Larour, E., Seroussi, H., Morlighem, M., and Nowicki, S.: Future Antarctic bed topography and its implications for ice sheet dynamics, Solid Earth, 5, 569–584, https://doi.org/10.5194/se-5-569-2014, 2014. a 2. Adhikari, S., Ivins, E. R., and Larour, E.: ISSM-SESAW v1.0: mesh-based computation of gravitationally consistent sea-level and geodetic signatures caused by cryosphere and climate driven mass change, Geosci. Model Dev., 9, 1087–1109, https://doi.org/10.5194/gmd-9-1087-2016, 2016. a 3. Adhikari, S., Ivins, E. R., Frederikse, T., Landerer, F. W., and Caron, L.: Sea-level fingerprints emergent from GRACE mission data, Earth Syst. Sci. Data, 11, 629–646, https://doi.org/10.5194/essd-11-629-2019, 2019. a 4. Adhikari, S. Ivins, E. Larour, E. Caron, L., and Seroussi, H.: Sample data for computing sea-level contribution from ice sheets, https://doi.org/10.7910/DVN/9LUJTD, Harvard Dataverse, V1, 2020. a 5. Altamimi, Z., Rebischung, P., Metivier, L., and Collilieux, X.:
ITRF2014: A new release of the International Terrestrial Reference Frame modeling nonlinear station motions,
J. Geophys. Res.-Sol. Ea.,
121, 6109–6131, 2016. a
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