Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America

Abstract New 3D multi‐azimuthal receiver function analysis identified four regional seismic discontinuities dipping at 7–13° within the mantle of the Superior craton of North America; most are discordant to known major upper crustal structures. Widely observed crustal‐scale structures with near‐vert...

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Published in:Geochemistry, Geophysics, Geosystems
Main Authors: David B. Snyder, Geneviève Savard, Bruce A. Kjarsgaard, Aeron Vaillancourt, Phillips C. Thurston, John A. Ayer, Eric Roots
Format: Article
Language:English
Published: Wiley 2021-04-01
Subjects:
Online Access:https://doi.org/10.1029/2020GC009566
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author David B. Snyder
Geneviève Savard
Bruce A. Kjarsgaard
Aeron Vaillancourt
Phillips C. Thurston
John A. Ayer
Eric Roots
author_facet David B. Snyder
Geneviève Savard
Bruce A. Kjarsgaard
Aeron Vaillancourt
Phillips C. Thurston
John A. Ayer
Eric Roots
author_sort David B. Snyder
collection DOAJ
container_title Geochemistry, Geophysics, Geosystems
description Abstract New 3D multi‐azimuthal receiver function analysis identified four regional seismic discontinuities dipping at 7–13° within the mantle of the Superior craton of North America; most are discordant to known major upper crustal structures. Widely observed crustal‐scale structures with near‐vertical axial planes striking east‐west indicate that the most recent and dominant phase of folding and horizontal shortening strain occurred during the Kenoran (D2) crustal deformation concurrent with Au‐mineralization and peak metamorphism at 2.72–2.66 Ga. Two mantle discontinuities strike 065° and 249°, dipping to the southeast and northwest, respectively. These strikes roughly parallel the northern margin of the Superior craton and some intra‐cratonic features such as the axis of the Quetico Basin. Two discontinuities strike 355° and 187°, dipping to the east and west, respectively, and parallel to the western margin of the craton. Our new observations reveal neither moderately dipping, east‐west striking discontinuities nor coherent eclogitic layers characteristic of modern plate tectonic subduction zones. Prominent east‐ and west‐dipping mantle structures relate best to a Paleoproterozoic (Trans‐Hudson) deformation, which is rarely observed in the crust. A new analysis of mantle xenoliths and xenocrysts indicates that carbonatitic metasomatism predominates above some discontinuities where strongly localized conductivity occurs whereas kimberlitic metasomatism predominates below the discontinuities in the broadly conductive mantle.
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spelling doaj-art-5c3271d210d64cf0b800ac67c19fa41e2025-08-19T22:52:48ZengWileyGeochemistry, Geophysics, Geosystems1525-20272021-04-01224n/an/a10.1029/2020GC009566Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North AmericaDavid B. Snyder0Geneviève Savard1Bruce A. Kjarsgaard2Aeron Vaillancourt3Phillips C. Thurston4John A. Ayer5Eric Roots6Metal Earth, Mineral Exploration Research Centre Laurentian University Sudbury ON CanadaDepartment of Geoscience University of Calgary Calgary AB CanadaGeological Survey of Canada Ottawa ON CanadaGeological Survey of Canada Ottawa ON CanadaMetal Earth, Mineral Exploration Research Centre Laurentian University Sudbury ON CanadaMetal Earth, Mineral Exploration Research Centre Laurentian University Sudbury ON CanadaMetal Earth, Mineral Exploration Research Centre Laurentian University Sudbury ON CanadaAbstract New 3D multi‐azimuthal receiver function analysis identified four regional seismic discontinuities dipping at 7–13° within the mantle of the Superior craton of North America; most are discordant to known major upper crustal structures. Widely observed crustal‐scale structures with near‐vertical axial planes striking east‐west indicate that the most recent and dominant phase of folding and horizontal shortening strain occurred during the Kenoran (D2) crustal deformation concurrent with Au‐mineralization and peak metamorphism at 2.72–2.66 Ga. Two mantle discontinuities strike 065° and 249°, dipping to the southeast and northwest, respectively. These strikes roughly parallel the northern margin of the Superior craton and some intra‐cratonic features such as the axis of the Quetico Basin. Two discontinuities strike 355° and 187°, dipping to the east and west, respectively, and parallel to the western margin of the craton. Our new observations reveal neither moderately dipping, east‐west striking discontinuities nor coherent eclogitic layers characteristic of modern plate tectonic subduction zones. Prominent east‐ and west‐dipping mantle structures relate best to a Paleoproterozoic (Trans‐Hudson) deformation, which is rarely observed in the crust. A new analysis of mantle xenoliths and xenocrysts indicates that carbonatitic metasomatism predominates above some discontinuities where strongly localized conductivity occurs whereas kimberlitic metasomatism predominates below the discontinuities in the broadly conductive mantle.https://doi.org/10.1029/2020GC009566Garnet geochemistrykimberlitic metasomatismlithospheremantle seismic discontinuitiesSuperior craton
spellingShingle David B. Snyder
Geneviève Savard
Bruce A. Kjarsgaard
Aeron Vaillancourt
Phillips C. Thurston
John A. Ayer
Eric Roots
Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America
Garnet geochemistry
kimberlitic metasomatism
lithosphere
mantle seismic discontinuities
Superior craton
title Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America
title_full Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America
title_fullStr Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America
title_full_unstemmed Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America
title_short Multidisciplinary Modeling of Mantle Lithosphere Structure Within the Superior Craton, North America
title_sort multidisciplinary modeling of mantle lithosphere structure within the superior craton north america
topic Garnet geochemistry
kimberlitic metasomatism
lithosphere
mantle seismic discontinuities
Superior craton
url https://doi.org/10.1029/2020GC009566
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