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The Northern Calcareous Alps revisited: Formation of a hyperextended margin and mantle exhumation in the Northern Calcareous Alps sector of the Neo-Tethys (Eastern Alps, Austria)

  • Philipp Strauss
  • , Pablo Granado*
  • , Josep Anton Muñoz
  • , Katharina Böhm
  • , Ralf Schuster
  • *Corresponding author for this work

Research output: Contribution to JournalReview articleAcademicpeer-review

Abstract

The Neo-Tethys margin evolution is preserved in the Northern Calcareous Alps (Eastern Alps), from Late Permian crustal stretching to Late Triassic oceanization. The Northern Calcareous Alps represent the salt-floored fold-and-thrust belt developed from the salt-influenced Triassic carbonate sedimentary cover of the ancestral European margin of the Neo-Tethys Ocean. A crustal scale model for the margin has been obtained by restoration of regional cross-sections of the Northern Calcareous Alps carbonate platforms. Lithospheric break-up was investigated from remnants of exhumed mantle found within an evaporitic melange, suggesting hyperextended crust underneath the distal Triassic platforms of the Northern Calcareous Alps preceding breakup. By modelling the thermal evolution of the margin in combination with excellent stratigraphic control, a detailed timeline has been established for the evolution of the Neo-Tethys margin, especially around the period of rapid mantle exhumation. Our study indicates that salt-floored carbonate shelfs can be used as a proxy to characterize the margins evolution, from crustal stretching to continental breakup. Diagnostic stratigraphic records are preserved in the carbonate platforms: pre- mantle exhumation carbonates are represented by aggrading isolated carbonate platforms first, followed by expanding and margin wide prograding carbonate shelfs once thermal subsidence dominates. In addition, a distinct clastic sequence is deposited as an immediate response to mantle exhumation, in between the pre- and post-mantle exhumation carbonate factory. Our study proposes a new refined model for the formation of the Neo-Tethys margin and provides new insights for the dynamic coupling of salt-controlled carbonate shelfs and the underlying lithosphere during continental breakup.

Original languageEnglish
Article number104488
Pages (from-to)1-30
Number of pages30
JournalEarth-Science Reviews
Volume243
Early online date28 Jun 2023
DOIs
Publication statusPublished - Aug 2023

Bibliographical note

Funding Information:
This work is a contribution of the Institut de Recerca Geomodels ( Universitat de Barcelona ). We acknowledge the financial support of the research project Structure and Deformation of Salt-bearing Rifted Margins (SABREM), PID2020-117598GB-I00 , funded by MCIN/ AEI / 10.13039/501100011033 . We further acknowledge the support of OMV E&P GmbH. Friedrich Koller is thanked for supporting the description of the petrology of the mafic rocks. Michael Wagreich is thanked for discussing stratigraphic details of the Gosau Group, while Klaus Pelz is thanked for numerous discussions on regional tectonics. We acknowledge discussions with Gianreto Manatschal to establishing comparisons with the Alpine Tethys and Atlantic-type margins. Comments by Prof. Neubauer (Univ. Salzburg) and an anonymous reviewer largely contributed to the improvement of this work.

Funding Information:
This work is a contribution of the Institut de Recerca Geomodels (Universitat de Barcelona). We acknowledge the financial support of the research project Structure and Deformation of Salt-bearing Rifted Margins (SABREM), PID2020-117598GB-I00, funded by MCIN/ AEI /10.13039/501100011033. We further acknowledge the support of OMV E&P GmbH. Friedrich Koller is thanked for supporting the description of the petrology of the mafic rocks. Michael Wagreich is thanked for discussing stratigraphic details of the Gosau Group, while Klaus Pelz is thanked for numerous discussions on regional tectonics. We acknowledge discussions with Gianreto Manatschal to establishing comparisons with the Alpine Tethys and Atlantic-type margins. Comments by Prof. Neubauer (Univ. Salzburg) and an anonymous reviewer largely contributed to the improvement of this work.

Publisher Copyright:
© 2023 The Authors

Funding

This work is a contribution of the Institut de Recerca Geomodels ( Universitat de Barcelona ). We acknowledge the financial support of the research project Structure and Deformation of Salt-bearing Rifted Margins (SABREM), PID2020-117598GB-I00 , funded by MCIN/ AEI / 10.13039/501100011033 . We further acknowledge the support of OMV E&P GmbH. Friedrich Koller is thanked for supporting the description of the petrology of the mafic rocks. Michael Wagreich is thanked for discussing stratigraphic details of the Gosau Group, while Klaus Pelz is thanked for numerous discussions on regional tectonics. We acknowledge discussions with Gianreto Manatschal to establishing comparisons with the Alpine Tethys and Atlantic-type margins. Comments by Prof. Neubauer (Univ. Salzburg) and an anonymous reviewer largely contributed to the improvement of this work. This work is a contribution of the Institut de Recerca Geomodels (Universitat de Barcelona). We acknowledge the financial support of the research project Structure and Deformation of Salt-bearing Rifted Margins (SABREM), PID2020-117598GB-I00, funded by MCIN/ AEI /10.13039/501100011033. We further acknowledge the support of OMV E&P GmbH. Friedrich Koller is thanked for supporting the description of the petrology of the mafic rocks. Michael Wagreich is thanked for discussing stratigraphic details of the Gosau Group, while Klaus Pelz is thanked for numerous discussions on regional tectonics. We acknowledge discussions with Gianreto Manatschal to establishing comparisons with the Alpine Tethys and Atlantic-type margins. Comments by Prof. Neubauer (Univ. Salzburg) and an anonymous reviewer largely contributed to the improvement of this work.

FundersFunder number
Institut de Recerca Geomodels
OMV E&P GmbH
Universitat de BarcelonaPID2020-117598GB-I00
Universitat de Barcelona
Agencia Estatal de Investigación

    Keywords

    • Balanced crosssection
    • Fold-and-thrust belt
    • Neo-Tethys
    • Rifted margin
    • Salt tectonics
    • Thermal modelling

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