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  3D glacial-isostatic adjustment models using geodynamically constrained Earth structures

Bagge, M., Klemann, V., Steinberger, B., Latinovic, M., Thomas, M. (2021): 3D glacial-isostatic adjustment models using geodynamically constrained Earth structures - Abstracts, EGU General Assembly 2021 (Online 2021).
https://doi.org/10.5194/egusphere-egu21-13479

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Bagge, Meike1, Autor              
Klemann, V.1, Autor              
Steinberger, B.2, Autor              
Latinovic, Milena3, Autor              
Thomas, M.1, Autor              
Affiliations:
11.3 Earth System Modelling, 1.0 Geodesy, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum, ou_146027              
22.5 Geodynamic Modelling, 2.0 Geophysics, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum, ou_146031              
34.4 Hydrology, 4.0 Geosystems, Departments, GFZ Publication Database, Deutsches GeoForschungsZentrum, ou_146048              

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 Zusammenfassung: The interaction between ice sheets and the solid Earth plays an important role for ice-sheet stability and sea-level change and hence for global climate models. Glacial-isostatic adjustment (GIA) models enable simulation of the solid Earth response due to variations in ice-sheet and ocean loading and prediction of the relative sea-level change. Because the viscoelastic response of the solid Earth depends on both ice-sheet distribution and the Earth’s rheology, independent constraints for the Earth structure in GIA models are beneficial. Seismic tomography models facilitate insights into the Earth’s interior, revealing lateral variability of the mantle viscosity that allows studying its relevance in GIA modeling. Especially, in regions of low mantle viscosity, the predicted surface deformations generated with such 3D GIA models differ considerably from those generated by traditional GIA models with radially symmetric structures. But also, the conversion from seismic velocity variations to viscosity is affected by a set of uncertainties. Here, we apply geodynamically constrained 3D Earth structures. We analyze the impact of conversion parameters (reduction factor in Arrhenius law and radial viscosity profile) on relative sea-level predictions. Furthermore, we focus on exemplary low-viscosity regions like the Cascadian subduction zone and southern Patagonia, which coincide with significant ice-mass changes.

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Sprache(n): eng - Englisch
 Datum: 20212021
 Publikationsstatus: Final veröffentlicht
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 Identifikatoren: DOI: 10.5194/egusphere-egu21-13479
GFZPOF: p4 T2 Ocean and Cryosphere
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Veranstaltung

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Titel: EGU General Assembly 2021
Veranstaltungsort: Online
Start-/Enddatum: 2021-04-19 - 2021-04-30

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Titel: Abstracts
Genre der Quelle: Konferenzband
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