The origin and evolution of V-rich, magnetite dominated Fe-Ti oxide mineralization; Northwest River Anorthosite, south-central Labrador, Canada

被引:0
作者
Anthony A. Valvasori
John M. Hanchar
Stephen J. Piercey
Merline L. D. Fonkwe
机构
[1] Memorial University of Newfoundland,Department of Earth Sciences
[2] Labrador Institute of Memorial University of Newfoundland,undefined
来源
Mineralium Deposita | 2020年 / 55卷
关键词
Magnetite; Fe-Ti oxide mineralization; Proterozoic massif-type anorthosite; Northwest River Anorthosite; Labrador;
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摘要
Zones of massive to semi-massive Fe-Ti oxide mineralization are present in the Northwest River Anorthosite, a ca. 1625-Ma Paleoproterozoic massif-type anorthosite located in the Grenville Province of south-central Labrador. The oxide mineralization is predominantly composed of coarse to very-coarse grained V-rich magnetite with less abundant coarse granular ilmenite and pleonaste that formed by exsolution from the primary, chemically impure magnetite; all observed oxide minerals have complex and abundant subsolidus reequilibration and exsolution textures. Using petrography, oxide mineral chemistry, whole-rock geochemistry, and oxide-anorthosite field relationships, a three-process model is proposed for the formation of the oxide mineralization: (1) late-stage magmatic crystallization of impure magnetite; (2) concentration of Fe-Ti oxides via solid-state remobilization; and (3) reequilibration during subsequent post-emplacement cooling and Grenvillian metamorphism. These subsolidus processes significantly modified the primary magmatic composition of the magnetite through exsolution and reequilibration. Results from in-situ magnetite EPMA and LA-ICPMS analyses were plotted on magnetite mineral chemical discrimination diagrams. The data display a wide spread and typically do not plot exclusively in the expected anorthosite-hosted Fe-Ti-V magnetite fields. This is most likely due to modification of magnetite chemistry during subsolidus cooling and reequilibration. As such, care must be taken when using magnetite discrimination diagrams for Fe-Ti-V deposits given the complex petrogenetic histories that magnetite within these types of deposits experience.
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页码:555 / 575
页数:20
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共 172 条
  • [21] Duchesne JC(1999)Fe-Ti deposits in Rogaland anorthosites (South Norway): geochemical characteristics and problems of interpretation Mineral Deposita 34 182-198
  • [22] Vander Auwera J(2011)Discriminant diagrams for iron oxide trace element fingerprinting of mineral deposit types Mineral Deposita 36 319-355
  • [23] Charlier B(2001)Petrogenesis of apatite rich rocks (nelsonites and oxide-apatite gabbronorites) associated with massif anorthosites Econ Geol 96 797-815
  • [24] Skår Ø(2001)The vanadium redox-battery: an efficient storage unit for photovoltaic systems Electrochim Acta 47 825-831
  • [25] Korneliussen A(1996)The evolution of the Grenville Province in Eastern Labrador, Canada Geol Soc Lond Spec Publ 112 197-218
  • [26] Duchesne JC(2002)A U-Pb geochronological review of the Proterozoic history of the eastern Grenville Province Can J Earth Sci 39 795-829
  • [27] Vander Auwera J(1992)The Labradorian orogeny in the Grenville Province, eastern Labrador Can J Earth Sci 29 1944-1957
  • [28] Charlier B(2008)Proterozoic southward accretion and Grenvillian orogenesis in the interior Grenville Province in eastern Labrador: Evidence from U–Pb geochronological investigations Precambrian Research 165 61-95
  • [29] Sakoma E(1992)Geological characteristics and tectonic setting of Proterozoic iron oxide (Cu-U-Au-REE) deposits Precambrian Res 58 241-287
  • [30] Sauvé M(2014)Dissolution-reprecipitation process of magnetite from the Chengchao iron deposit: insights into ore genesis and implication for in-situ chemical analysis of magnetite Ore Geol Rev 57 393-405