A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration

The Antarctic continent is almost entirely ~99% covered by a thick ice layer impeding classical in-situ measurements. It hence remains one of the least geophysically known areas on Earth. Little is known about the structure and the thermal and rheological properties of its lithosphere. Since the sta...

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Bibliographic Details
Main Author: Haeger, Carina
Format: Thesis
Language:unknown
Published: Freie Universität Berlin 2019
Subjects:
Online Access:https://dx.doi.org/10.17169/refubium-25824
https://refubium.fu-berlin.de/handle/fub188/26065
id ftdatacite:10.17169/refubium-25824
record_format openpolar
institution Open Polar
collection DataCite Metadata Store (German National Library of Science and Technology)
op_collection_id ftdatacite
language unknown
topic Antarctica
gravity modeling
lithosphere
thermal, density and compositonal model
effective elastic thickness
decompensative gravity anomaly
500 Natural sciences and mathematics550 Earth sciences550 Earth sciences
spellingShingle Antarctica
gravity modeling
lithosphere
thermal, density and compositonal model
effective elastic thickness
decompensative gravity anomaly
500 Natural sciences and mathematics550 Earth sciences550 Earth sciences
Haeger, Carina
A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration
topic_facet Antarctica
gravity modeling
lithosphere
thermal, density and compositonal model
effective elastic thickness
decompensative gravity anomaly
500 Natural sciences and mathematics550 Earth sciences550 Earth sciences
description The Antarctic continent is almost entirely ~99% covered by a thick ice layer impeding classical in-situ measurements. It hence remains one of the least geophysically known areas on Earth. Little is known about the structure and the thermal and rheological properties of its lithosphere. Since the state of the lithosphere is strongly linked to near-surface processes such as ice dynamics or glacial isostatic adjustment (GIA) as well as the deeper, convecting mantle, knowledge of those properties is crucially important when modeling the coupled systems. This cumulative thesis consists of three published scientific papers that together characterize the lithosphere of Antarctica in terms of strength, temperature, density, composition and upper crustal properties. As a measure of strength, the effective elastic thickness Te was derived by cross-spectral analysis of the gravity field with the adjusted topography. The fan wavelet technique was employed to, for the first time, calculate variations of Te over the entire continent by means of admittance and coherence analysis. The same gravity and topography data was then combined with tomography models constrained by mineral physics equations in an iterative inversion scheme to develop a 3D density, thermal and compositional model of the Antarctic lithosphere and upper mantle. Seismic data on crustal structures was further employed to create a new Moho and crustal density model. In order to investigate upper crustal structures and properties, corrections of the gravity effect of isostatic compensation of geological loads were further applied to the isostatic gravity anomalies. The resulting so-called decompensative gravity anomalies were translated into sediment distributions previously hidden below the ice sheet. A general division of the Antarctic lithosphere is confirmed by all parameters under study. A transition is visible along the Transantarctic Mountains. Whether the mountain chain belongs to West Antarctica (WANT) or East Antarctica (EANT) has been under question, but especially the estimates of Te indicate a closer connection to WANT. Apart from this general division, lithospheric fragmentation was discovered within EANT. Cratonic fragments of Precambrian origin exhibiting high depletion, low temperatures and high Te were detected in Dronning Maud Land, in Wilkes Land and close to the South Pole. The latter two are likely part of the Mawson craton. Lithospheric weakening combined with an almost primitive upper mantle exists in the Lambert Graben and was probably the result of rifting in the East Antarctic Rift System. The obtained decompensative gravity anomalies correspond well to known sedimentary basins such as the Lambert Graben and the Filchner-Ronne Ice shelf. They also suggest the presence of large sedimentary deposits that were not ore only sparsely mapped previously. Therefore, this thesis provides a comprehensive model of the lithosphere of Antarctica and a basis for further analysis of its coupling with the deep mantle and surface processes. As such, the resulting model facilitates surface heat flux modeling and estimates of upper mantle viscosity crucial for GIA modeling.
format Thesis
author Haeger, Carina
author_facet Haeger, Carina
author_sort Haeger, Carina
title A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration
title_short A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration
title_full A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration
title_fullStr A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration
title_full_unstemmed A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration
title_sort comprehensive model of the antarctic lithosphere based on geophysical data integration : ein umfassendes modell der antarktischen lithosphäre basierend auf geophysikalischer datenintegration
publisher Freie Universität Berlin
publishDate 2019
url https://dx.doi.org/10.17169/refubium-25824
https://refubium.fu-berlin.de/handle/fub188/26065
long_lat ENVELOPE(-61.000,-61.000,-78.500,-78.500)
ENVELOPE(120.000,120.000,-69.000,-69.000)
geographic Antarctic
Dronning Maud Land
East Antarctica
Ronne Ice Shelf
South Pole
The Antarctic
Transantarctic Mountains
West Antarctica
Wilkes Land
geographic_facet Antarctic
Dronning Maud Land
East Antarctica
Ronne Ice Shelf
South Pole
The Antarctic
Transantarctic Mountains
West Antarctica
Wilkes Land
genre Antarc*
Antarctic
Antarctica
Antarktis*
Dronning Maud Land
East Antarctica
Filchner Ronne Ice Shelf
Filchner-Ronne Ice Shelf
Ice Sheet
Ice Shelf
Ronne Ice Shelf
South pole
South pole
West Antarctica
Wilkes Land
genre_facet Antarc*
Antarctic
Antarctica
Antarktis*
Dronning Maud Land
East Antarctica
Filchner Ronne Ice Shelf
Filchner-Ronne Ice Shelf
Ice Sheet
Ice Shelf
Ronne Ice Shelf
South pole
South pole
West Antarctica
Wilkes Land
op_rights http://www.fu-berlin.de/sites/refubium/rechtliches/Nutzungsbedingungen
op_doi https://doi.org/10.17169/refubium-25824
_version_ 1766256782800322560
spelling ftdatacite:10.17169/refubium-25824 2023-05-15T13:52:29+02:00 A comprehensive model of the Antarctic lithosphere based on geophysical data integration : Ein umfassendes Modell der antarktischen Lithosphäre basierend auf geophysikalischer Datenintegration Haeger, Carina 2019 https://dx.doi.org/10.17169/refubium-25824 https://refubium.fu-berlin.de/handle/fub188/26065 unknown Freie Universität Berlin http://www.fu-berlin.de/sites/refubium/rechtliches/Nutzungsbedingungen Antarctica gravity modeling lithosphere thermal, density and compositonal model effective elastic thickness decompensative gravity anomaly 500 Natural sciences and mathematics550 Earth sciences550 Earth sciences Thesis Other Dissertation thesis 2019 ftdatacite https://doi.org/10.17169/refubium-25824 2021-11-05T12:55:41Z The Antarctic continent is almost entirely ~99% covered by a thick ice layer impeding classical in-situ measurements. It hence remains one of the least geophysically known areas on Earth. Little is known about the structure and the thermal and rheological properties of its lithosphere. Since the state of the lithosphere is strongly linked to near-surface processes such as ice dynamics or glacial isostatic adjustment (GIA) as well as the deeper, convecting mantle, knowledge of those properties is crucially important when modeling the coupled systems. This cumulative thesis consists of three published scientific papers that together characterize the lithosphere of Antarctica in terms of strength, temperature, density, composition and upper crustal properties. As a measure of strength, the effective elastic thickness Te was derived by cross-spectral analysis of the gravity field with the adjusted topography. The fan wavelet technique was employed to, for the first time, calculate variations of Te over the entire continent by means of admittance and coherence analysis. The same gravity and topography data was then combined with tomography models constrained by mineral physics equations in an iterative inversion scheme to develop a 3D density, thermal and compositional model of the Antarctic lithosphere and upper mantle. Seismic data on crustal structures was further employed to create a new Moho and crustal density model. In order to investigate upper crustal structures and properties, corrections of the gravity effect of isostatic compensation of geological loads were further applied to the isostatic gravity anomalies. The resulting so-called decompensative gravity anomalies were translated into sediment distributions previously hidden below the ice sheet. A general division of the Antarctic lithosphere is confirmed by all parameters under study. A transition is visible along the Transantarctic Mountains. Whether the mountain chain belongs to West Antarctica (WANT) or East Antarctica (EANT) has been under question, but especially the estimates of Te indicate a closer connection to WANT. Apart from this general division, lithospheric fragmentation was discovered within EANT. Cratonic fragments of Precambrian origin exhibiting high depletion, low temperatures and high Te were detected in Dronning Maud Land, in Wilkes Land and close to the South Pole. The latter two are likely part of the Mawson craton. Lithospheric weakening combined with an almost primitive upper mantle exists in the Lambert Graben and was probably the result of rifting in the East Antarctic Rift System. The obtained decompensative gravity anomalies correspond well to known sedimentary basins such as the Lambert Graben and the Filchner-Ronne Ice shelf. They also suggest the presence of large sedimentary deposits that were not ore only sparsely mapped previously. Therefore, this thesis provides a comprehensive model of the lithosphere of Antarctica and a basis for further analysis of its coupling with the deep mantle and surface processes. As such, the resulting model facilitates surface heat flux modeling and estimates of upper mantle viscosity crucial for GIA modeling. Thesis Antarc* Antarctic Antarctica Antarktis* Dronning Maud Land East Antarctica Filchner Ronne Ice Shelf Filchner-Ronne Ice Shelf Ice Sheet Ice Shelf Ronne Ice Shelf South pole South pole West Antarctica Wilkes Land DataCite Metadata Store (German National Library of Science and Technology) Antarctic Dronning Maud Land East Antarctica Ronne Ice Shelf ENVELOPE(-61.000,-61.000,-78.500,-78.500) South Pole The Antarctic Transantarctic Mountains West Antarctica Wilkes Land ENVELOPE(120.000,120.000,-69.000,-69.000)