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Origin of the Rubian carbonate-hosted magnesite deposit, Galicia, NW Spain: mineralogical, REE, fluid inclusion and isotope evidence)

dc.contributor.authorKilias, Stephanos P.
dc.contributor.authorPozo, M.
dc.contributor.authorBustillo Revuelta, Manuel
dc.contributor.authorStamatakis, Michael G.
dc.contributor.authorCalvo Sorando, José Pedro
dc.date.accessioned2023-06-20T12:39:02Z
dc.date.available2023-06-20T12:39:02Z
dc.date.issued2006
dc.description.abstractThe Rubian magnesite deposit (West Asturian—Leonese Zone, Iberian Variscan belt) is hosted by a 100-m-thick folded and metamorphosed Lower Cambrian carbonate/siliciclastic metasedimentary sequence—the Cándana Limestone Formation. It comprises upper (20-m thickness) and lower (17-m thickness) lens-shaped ore bodies separated by 55 m of slates and micaceous schists. The main (lower) magnesite ore body comprises a package of magnesite beds with dolomite-rich intercalations, sandwiched between slates and micaceous schists. In the upper ore body, the magnesite beds are thinner (centimetre scale mainly) and occur between slate beds. Mafic dolerite dykes intrude the mineralisation. The mineralisation passes eastwards into sequence of bedded dolostone (Buxan) and laminated to banded calcitic marble (Mao). These show significant Variscan extensional shearing or fold-related deformation, whereas neither Rubian dolomite nor magnesite show evidence of tectonic disturbance. This suggests that the dolomitisation and magnesite formation postdate the main Variscan deformation. In addition, the morphology of magnesite crystals and primary fluid inclusions indicate that magnesite is a neoformed hydrothermal mineral. Magnesite contains irregularly distributed dolomite inclusions (<50 μm) and these are interpreted as relics of a metasomatically replaced dolostone precursor. The total rare earth element (REE) contents of magnesite are verysimilar to those of Buxan dolostone but are depleted in light rare earth elements (LREE); heavy rare earth element concentrations are comparable. However, magnesite REE chondrite normalised profiles lack any characteristic anomaly indicative of marine environment. Compared with Mao calcite, magnesite is distinct in terms of both REE concentrations and patterns. Fluid inclusion studies show that the mineralising fluids were MgCl2–NaCl–CaCl2–H2O aqueous brines exhibiting highly variable salinities (3.3 to 29.5 wt.% salts). This may be the result of a combination of fluid mixing, migration of pulses of variable-salinity brines and/or local dissolution and replacement processes of the host dolostone. Fluid inclusion data and comparison with other N Iberian dolostone-hosted metasomatic deposits suggest that Rubian magnesite probably formed at temperatures between 160 and 200°C. This corresponds, at hydrostatic pressure (500 bar), to a depth of formation of ∼5 km. Mineralisation- related Rubian dolomite yields δ18O values (δ18O: 12.0–15.4‰, mean: 14.4±1.1‰) depleted by around 5‰ compared with barren Buxan dolomite (δ18O: 17.1– 20.2‰, mean: 19.4±1.0‰). This was interpreted to reflect an influx of 18O-depleted waters accompanied by a temperature increase in a fluid-dominated system. Overlapping calculated δ18Ofluid values (∼+5‰ at 200°C) for fluids in equilibrium with Rubian dolomite and magnesite show that they were formed by the same hydrothermal system at different temperatures. In terms of δ13C values, Rubian dolomite (δ13C: −1.4 to 1.9‰, mean: 0.4±1.3‰) and magnesite (δ13C: −2.3 to 2.4‰, mean: 0.60±1.0‰) generally exhibit more negative δ13C values compared with Buxan dolomite (δ13C: −0.2 to 1.9‰, mean: 0.8± 0.6‰) and Mao calcite (δ13C: −0.3 to 1.5‰, mean: 0.6± 0.6‰), indicating progressive odification to lower δ13C values through interaction with hydrothermal fluids. 87Sr/86Sr ratios, calculated at 290 Ma, vary from 0.70849 to 0.70976 for the Mao calcite and from 0.70538 to 0.70880 for the Buxan dolostone. The 87Sr/86Sr ratios in Rubian magnesite are more radiogenic and range from 0.71123 to 0.71494. The combined δ18O–δ13C and 87Sr/86Sr data indicate that the magnesite-related fluids were modified basinal brines that have reacted and equilibrated with intercalated siliciclastic rocks. Magnesite formation is genetically linked to regional hydrothermal dolomitisation associated with lithospheric delamination, late-Variscan high heat flow and extensional tectonics in the NW Iberian Belt. A comparison with genetic models for the Puebla de Lillo talc deposits suggests that the formation of hydrothermal replacive magnesite at Rubian resulted from a metasomatic column with magnesite forming at higher fluid/rock ratios than dolomite. In this study, magnesite generation took place via the local reaction of hydrothermal dolostone with the same hydrothermal fluids in very high permeability zones at high fluid/rock ratios (e.g. faults). It was also possibly aided by additional heat from intrusive dykes or sub-cropping igneous bodies. This would locally raise isotherms enabling a transition from the dolomite stability field to that of magnesite.
dc.description.departmentDepto. de Mineralogía y Petrología
dc.description.facultyFac. de Ciencias Geológicas
dc.description.refereedTRUE
dc.description.sponsorshipProject BTE2001-1443 (Ministerio de Ciencia y Tecnología).
dc.description.statuspub
dc.eprint.idhttps://eprints.ucm.es/id/eprint/43151
dc.identifier.doi10.1007/s00126-006-0075-5
dc.identifier.issn0026-4598
dc.identifier.officialurlhttps://www.springer.com/journal/126
dc.identifier.urihttps://hdl.handle.net/20.500.14352/52054
dc.journal.titleMineralium deposita
dc.language.isoeng
dc.page.final773
dc.page.initial713
dc.publisherSpringer Science Business Media
dc.rightsAtribución-NoComercial-SinDerivadas 3.0 España
dc.rights.accessRightsopen access
dc.rights.urihttps://creativecommons.org/licenses/by-nc-nd/3.0/es/
dc.subject.cdu552.5
dc.subject.keywordSpain
dc.subject.keywordMagnesite
dc.subject.keywordRubian
dc.subject.keywordDolomitisation
dc.subject.ucmPetrología
dc.titleOrigin of the Rubian carbonate-hosted magnesite deposit, Galicia, NW Spain: mineralogical, REE, fluid inclusion and isotope evidence)
dc.typejournal article
dc.volume.number41
dspace.entity.typePublication
relation.isAuthorOfPublication1df6fcdd-8f4e-485a-a759-2f9e008d9db8
relation.isAuthorOfPublication4aa3824b-ca03-45fd-b468-ebd78cb1ac8f
relation.isAuthorOfPublication.latestForDiscovery1df6fcdd-8f4e-485a-a759-2f9e008d9db8

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