Grenvillian massif-type anorthosite suite in Chiapas, Mexico: Magmatic to polymetamorphic evolution of anorthosites and their Ti-Fe ores
Two meta-anorthosite inliers (∼20km2 each) were discovered on each side of the Polochic-Tonalá fault system within the Chiapas Massif Complex (CMC) in southeastern Mexico. The anorthosites occur commonly associated to subordinate hornblendite, rutile-bearing ilmenitite, oxide-apatite-rich amphiboli...
Gespeichert in:
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| Dokumenttyp: | Article (Journal) |
| Sprache: | Englisch |
| Veröffentlicht: |
18 April 2017
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| In: |
Precambrian research
Year: 2017, Jahrgang: 295, Pages: 203-226 |
| ISSN: | 0301-9268 |
| DOI: | 10.1016/j.precamres.2017.04.028 |
| Online-Zugang: | Verlag, Volltext: http://dx.doi.org/10.1016/j.precamres.2017.04.028 Verlag, Volltext: http://www.sciencedirect.com/science/article/pii/S0301926816302790 |
| Verfasserangaben: | A. Cisneros de León, B. Weber, F. Ortega-Gutiérrez, R. González-Guzmán, R. Maldonado, L. Solari, P. Schaaf, R. Manjarrez-Juárez |
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| 245 | 1 | 0 | |a Grenvillian massif-type anorthosite suite in Chiapas, Mexico |b Magmatic to polymetamorphic evolution of anorthosites and their Ti-Fe ores |c A. Cisneros de León, B. Weber, F. Ortega-Gutiérrez, R. González-Guzmán, R. Maldonado, L. Solari, P. Schaaf, R. Manjarrez-Juárez |
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| 520 | |a Two meta-anorthosite inliers (∼20km2 each) were discovered on each side of the Polochic-Tonalá fault system within the Chiapas Massif Complex (CMC) in southeastern Mexico. The anorthosites occur commonly associated to subordinate hornblendite, rutile-bearing ilmenitite, oxide-apatite-rich amphibolite and nelsonite. An absolute crystallization age for the anorthosite could not be precisely constrained due to the paucity and apparent resetting of the magmatic zircon. However, they are interpreted as remnants of a Proterozoic massif-type anorthosite complex older than 909±27Ma as suggested by U-Pb data and the striking geochemical similitudes (major, trace and REE, Sr-Nd isotopes; TDM=1.39-1.45Ga) to Stenian-Tonian massif-type anorthosites found elsewhere. A complex tectono-thermal history for the anorthosite suite is inferred from the discovery of abundant metamorphic zircon in all samples. Ubiquitous petrographic evidence suggests formation of secondary zircon from reactions involving baddeleyite and srilankite (ZrTi2O6) breakdown at different stages of the anorthosite suite evolution. Two generations of baddeleyite are recognized: (1) exsolution from igneous ilmenite and högbomite ([Mg,Fe2+]2[Al,Ti]5O10) during cooling, and (2) exsolution product from metamorphic rutile and högbomite during retrogression. U-Pb zircon data (LA-MC-ICPMS) of three comagmatic rocks, including one anorthosite sample, reflect the complex polymetamorphic nature observed in the petrographical evidence; concordant to sub-concordant ages spread in a range from ∼909Ma to ∼242Ma. Most U-Pb ages cluster around known regional metamorphic events at ≃450Ma and ≃250Ma. In addition, an age cluster at ∼600Ma suggests a Neoproterozoic event, interpreted in terms of reheating of anorthosite during mafic intrusions associated to intra-plate rifting. | ||
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