When will it end? Long-lived intracontinental reactivation in central Australia

The post-Mesoproterozoic tectonometamorphic history of the Musgrave Province, central Australia, has previously been solely attributed to intracontinental compressional deformation during the 580–520 Ma Petermann Orogeny. However, our new structurally controlled multi-mineral geochronology results,...

Full description

Bibliographic Details
Main Authors: Raphael Quentin de Gromard, Christopher L. Kirkland, Heather M. Howard, Michael T.D. Wingate, Fred Jourdan, Brent I.A. McInnes, Martin Danišík, Noreen J. Evans, Bradley J. McDonald, R. Hugh Smithies
Format: Article
Language:English
Published: Elsevier 2019-01-01
Series:Geoscience Frontiers
Online Access:http://www.sciencedirect.com/science/article/pii/S1674987118301993
id doaj-94d08fba812547a2a3fb9cd3e3f8606a
record_format Article
collection DOAJ
language English
format Article
sources DOAJ
author Raphael Quentin de Gromard
Christopher L. Kirkland
Heather M. Howard
Michael T.D. Wingate
Fred Jourdan
Brent I.A. McInnes
Martin Danišík
Noreen J. Evans
Bradley J. McDonald
R. Hugh Smithies
spellingShingle Raphael Quentin de Gromard
Christopher L. Kirkland
Heather M. Howard
Michael T.D. Wingate
Fred Jourdan
Brent I.A. McInnes
Martin Danišík
Noreen J. Evans
Bradley J. McDonald
R. Hugh Smithies
When will it end? Long-lived intracontinental reactivation in central Australia
Geoscience Frontiers
author_facet Raphael Quentin de Gromard
Christopher L. Kirkland
Heather M. Howard
Michael T.D. Wingate
Fred Jourdan
Brent I.A. McInnes
Martin Danišík
Noreen J. Evans
Bradley J. McDonald
R. Hugh Smithies
author_sort Raphael Quentin de Gromard
title When will it end? Long-lived intracontinental reactivation in central Australia
title_short When will it end? Long-lived intracontinental reactivation in central Australia
title_full When will it end? Long-lived intracontinental reactivation in central Australia
title_fullStr When will it end? Long-lived intracontinental reactivation in central Australia
title_full_unstemmed When will it end? Long-lived intracontinental reactivation in central Australia
title_sort when will it end? long-lived intracontinental reactivation in central australia
publisher Elsevier
series Geoscience Frontiers
issn 1674-9871
publishDate 2019-01-01
description The post-Mesoproterozoic tectonometamorphic history of the Musgrave Province, central Australia, has previously been solely attributed to intracontinental compressional deformation during the 580–520 Ma Petermann Orogeny. However, our new structurally controlled multi-mineral geochronology results, from two north-trending transects, indicate protracted reactivation of the Australian continental interior over ca. 715 million years. The earliest events are identified in the hinterland of the orogen along the western transect. The first tectonothermal event, at ca. 715 Ma, is indicated by 40Ar/39Ar muscovite and U–Pb titanite ages. Another previously unrecognised tectonometamorphic event is dated at ca. 630 Ma by U–Pb analyses of metamorphic zircon rims. This event was followed by continuous cooling and exhumation of the hinterland and core of the orogen along numerous faults, including the Woodroffe Thrust, from ca. 625 Ma to 565 Ma as indicated by muscovite, biotite, and hornblende 40Ar/39Ar cooling ages. We therefore propose that the Petermann Orogeny commenced as early as ca. 630 Ma. Along the eastern transect, 40Ar/39Ar muscovite and zircon (U–Th)/He data indicate exhumation of the foreland fold and thrust system to shallow crustal levels between ca. 550 Ma and 520 Ma, while the core of the orogen was undergoing exhumation to mid-crustal levels and cooling below 600–660 °C. Subsequent cooling to 150–220 °C of the core of the orogen occurred between ca. 480 Ma and 400 Ma (zircon [U–Th]/He data) during reactivation of the Woodroffe Thrust, coincident with the 450–300 Ma Alice Springs Orogeny. Exhumation of the footwall of the Woodroffe Thrust to shallow depths occurred at ca. 200 Ma. More recent tectonic activity is also evident as on the 21 May, 2016 (Sydney date), a magnitude 6.1 earthquake occurred, and the resolved focal mechanism indicates that compressive stress and exhumation along the Woodroffe Thrust is continuing to the present day. Overall, these results demonstrate repeated amagmatic reactivation of the continental interior of Australia for ca. 715 million years, including at least 600 million years of reactivation along the Woodroffe Thrust alone. Estimated cooling rates agree with previously reported rates and suggest slow cooling of 0.9–7.0 °C/Ma in the core of the Petermann Orogen between ca. 570 Ma and 400 Ma. The long-lived, amagmatic, intracontinental reactivation of central Australia is a remarkable example of stress transmission, strain localization and cratonization-hindering processes that highlights the complexity of Continental Tectonics with regards to the rigid-plate paradigm of Plate Tectonics. Keywords: Intracontinental deformation, Thermochronology, Petermann orogen, Musgrave Province, Plate tectonics, Cratonization
url http://www.sciencedirect.com/science/article/pii/S1674987118301993
work_keys_str_mv AT raphaelquentindegromard whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT christopherlkirkland whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT heathermhoward whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT michaeltdwingate whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT fredjourdan whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT brentiamcinnes whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT martindanisik whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT noreenjevans whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT bradleyjmcdonald whenwillitendlonglivedintracontinentalreactivationincentralaustralia
AT rhughsmithies whenwillitendlonglivedintracontinentalreactivationincentralaustralia
_version_ 1716778841667534848
spelling doaj-94d08fba812547a2a3fb9cd3e3f8606a2020-11-24T21:00:47ZengElsevierGeoscience Frontiers1674-98712019-01-01101149164When will it end? Long-lived intracontinental reactivation in central AustraliaRaphael Quentin de Gromard0Christopher L. Kirkland1Heather M. Howard2Michael T.D. Wingate3Fred Jourdan4Brent I.A. McInnes5Martin Danišík6Noreen J. Evans7Bradley J. McDonald8R. Hugh Smithies9Geological Survey of Western Australia, Department of Mines, Industry Regulation and Safety, 100 Plain Street, East Perth, WA, 6004, Australia; Corresponding author.School of Earth and Planetary Science/John de Laeter Centre/TIGeR, Curtin University, Perth, WA, 6845, AustraliaGeological Survey of Western Australia, Department of Mines, Industry Regulation and Safety, 100 Plain Street, East Perth, WA, 6004, AustraliaGeological Survey of Western Australia, Department of Mines, Industry Regulation and Safety, 100 Plain Street, East Perth, WA, 6004, AustraliaSchool of Earth and Planetary Science/John de Laeter Centre/TIGeR, Curtin University, Perth, WA, 6845, AustraliaSchool of Earth and Planetary Science/John de Laeter Centre/TIGeR, Curtin University, Perth, WA, 6845, AustraliaSchool of Earth and Planetary Science/John de Laeter Centre/TIGeR, Curtin University, Perth, WA, 6845, AustraliaSchool of Earth and Planetary Science/John de Laeter Centre/TIGeR, Curtin University, Perth, WA, 6845, AustraliaSchool of Earth and Planetary Science/John de Laeter Centre/TIGeR, Curtin University, Perth, WA, 6845, AustraliaGeological Survey of Western Australia, Department of Mines, Industry Regulation and Safety, 100 Plain Street, East Perth, WA, 6004, AustraliaThe post-Mesoproterozoic tectonometamorphic history of the Musgrave Province, central Australia, has previously been solely attributed to intracontinental compressional deformation during the 580–520 Ma Petermann Orogeny. However, our new structurally controlled multi-mineral geochronology results, from two north-trending transects, indicate protracted reactivation of the Australian continental interior over ca. 715 million years. The earliest events are identified in the hinterland of the orogen along the western transect. The first tectonothermal event, at ca. 715 Ma, is indicated by 40Ar/39Ar muscovite and U–Pb titanite ages. Another previously unrecognised tectonometamorphic event is dated at ca. 630 Ma by U–Pb analyses of metamorphic zircon rims. This event was followed by continuous cooling and exhumation of the hinterland and core of the orogen along numerous faults, including the Woodroffe Thrust, from ca. 625 Ma to 565 Ma as indicated by muscovite, biotite, and hornblende 40Ar/39Ar cooling ages. We therefore propose that the Petermann Orogeny commenced as early as ca. 630 Ma. Along the eastern transect, 40Ar/39Ar muscovite and zircon (U–Th)/He data indicate exhumation of the foreland fold and thrust system to shallow crustal levels between ca. 550 Ma and 520 Ma, while the core of the orogen was undergoing exhumation to mid-crustal levels and cooling below 600–660 °C. Subsequent cooling to 150–220 °C of the core of the orogen occurred between ca. 480 Ma and 400 Ma (zircon [U–Th]/He data) during reactivation of the Woodroffe Thrust, coincident with the 450–300 Ma Alice Springs Orogeny. Exhumation of the footwall of the Woodroffe Thrust to shallow depths occurred at ca. 200 Ma. More recent tectonic activity is also evident as on the 21 May, 2016 (Sydney date), a magnitude 6.1 earthquake occurred, and the resolved focal mechanism indicates that compressive stress and exhumation along the Woodroffe Thrust is continuing to the present day. Overall, these results demonstrate repeated amagmatic reactivation of the continental interior of Australia for ca. 715 million years, including at least 600 million years of reactivation along the Woodroffe Thrust alone. Estimated cooling rates agree with previously reported rates and suggest slow cooling of 0.9–7.0 °C/Ma in the core of the Petermann Orogen between ca. 570 Ma and 400 Ma. The long-lived, amagmatic, intracontinental reactivation of central Australia is a remarkable example of stress transmission, strain localization and cratonization-hindering processes that highlights the complexity of Continental Tectonics with regards to the rigid-plate paradigm of Plate Tectonics. Keywords: Intracontinental deformation, Thermochronology, Petermann orogen, Musgrave Province, Plate tectonics, Cratonizationhttp://www.sciencedirect.com/science/article/pii/S1674987118301993