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Lena V.S. Monteiro

Publications and source records attributed to Lena V.S. Monteiro.

2 recordsLinked to original sources

Spatial and temporal zoning of hydrothermal alteration and mineralization in the Sossego iron oxide-copper-gold deposit, Carajás Mineral Province, Brazil: Paragenesis and stable isotope constraints

The Sossego iron oxide&ndash;copper&ndash;gold deposit (245 Mt @ 1.1% Cu, 0.28 g/t Au) in the Caraj&aacute;s Mineral Province of Brazil consists of two major groups of orebodies (Pista&ndash;Sequeirinho&ndash;Baiano and Sossego&ndash;Curral) with distinct alteration assemblages that are separated from each other by a major high angle fault. The deposit is located along a regional WNW&ndash;ESE-striking shear zone that defines the contact between metavolcano&ndash;sedimentary units of the &sim;2.76 Ga Itacai&uacute;nas Supergroup and tonalitic to trondhjemitic gneisses and migmatites of the &sim;2.8 Ga Xingu Complex. The deposit is hosted by granite, granophyric granite, gabbro, and felsic metavolcanic rocks. The Pista&ndash;Sequeirinho&ndash;Baiano orebodies have undergone regional sodic (albite&ndash;hematite) alteration and later sodic&ndash;calcic (actinolite-rich) alteration associated with the formation of massive magnetite&ndash;(apatite) bodies. Both these alteration assemblages display ductile to ductile&ndash;brittle fabrics. They are cut by spatially restricted zones of potassic (biotite and potassium feldspar) alteration that grades outward to chlorite-rich assemblages. The Sossego&ndash;Curral orebodies contain weakly developed early albitic alteration and very poorly developed subsequent calcic&ndash;sodic alteration. These orebodies contain well-developed potassic alteration assemblages that were formed during brittle deformation that resulted in the formation of breccia bodies. Breccia matrix commonly displays coarse mineral infill suggestive of growth into open space. Sulfides in both groups of deposits were precipitated first with potassic alteration and more importantly with a later assemblage of calcite&ndash;quartz&ndash;epidote&ndash;chlorite. In the Sequeirinho orebodies, sulfides range from undeformed to deformed; sulfides in the Sossego&ndash;Curral orebodies are undeformed. Very late, weakly mineralized hydrolytic alteration is present in the Sossego/Currral orebodies. The sulfide assemblage is dominated by chalcopyrite with subsidiary siegenite, and millerite. Pyrrhotite and pyrite are minor constituents of ore in the Sequerinho orebodies while pyrite is relatively abundant in the Sossego&ndash;Curral bodies. Oxygen isotope partitioning between mineral pairs constrains temperatures in the deposit spatially and through time. In the Sequeirinho orebody, the early sodic&ndash;calcic alteration stage was characterized by temperatures exceeding 500&deg;C and &delta; 18 O H 2 O values for the alteration fluid of 6.9&thinsp;&plusmn;&thinsp;0.9&permil;. Temperature declines outward and upward from the zone of most intense alteration. Paragenetically later copper&ndash;gold mineralization displays markedly lower temperatures (<300&deg;C) and was characterized by the introduction of 18 O-depleted hydrothermal fluids &minus;1.8&thinsp;&plusmn;&thinsp;3.4&permil;. The calculated &delta;D H2O and &delta; 18 O H 2 O values suggest that the fluids that formed the early calcic&ndash;sodic alteration assemblage were of formational/metamorphic or magmatic origin. The decrease of &delta; 18 O H 2 O values through time may reflect influx of surficially derived waters during later alteration and mineralization events. Influx of such fluids could be related to episodic fluid overpressure, resulting in dilution and cooling of the metalliferous fluid, causing deposition of metals transported as metal chloride complexes.

Carajas Mineral Province

Paleoproterozoic high-sulfidation mineralization in the Tapajós gold province, Amazonian Craton, Brazil: geology, mineralogy, alunite argon age, and stable-isotope constraints

The Brazilian Tapaj&oacute;s gold province contains the first evidence of high-sulfidation gold mineralization in the Amazonian Craton. The mineralization appears to be in large nested calderas. The Tapaj&oacute;s&ndash;Parima (or Ventuari&ndash;Tapaj&oacute;s) geological province consists of a metamorphic, igneous, and sedimentary sequence formed during a 2.10 to 1.87 Ga ocean&minus;continent orogeny. The high-sulfidation mineralization with magmatic-hydrothermal alunite is related to hydrothermal breccias hosted in a rhyolitic volcanic ring complex that contains granitic stocks ranging in age from 1.89 to 1.87 Ga. Cone-shaped hydrothermal breccias, which flare upward, contain vuggy silica and have an overlying brecciated cap of massive silica; the deposits are located in the uppermost part of a ring-structure volcanic cone. Drill cores of one of the hydrothermal breccias contain alunite, natroalunite, pyrophyllite, andalusite, quartz, rutile, diaspore, woodhouseite&ndash;svanbergite, kaolinite, and pyrite along with inclusions of enargite&ndash;luzonite, chalcopyrite, bornite, and covellite. The siliceous core of this alteration center is surrounded by advanced argillic and argillic alteration zones that grade outward into large areas of propylitically altered rocks with sericitic alteration assemblages at depth. Several occurrences and generations of alunite are observed. Alunite is disseminated in the advanced argillic haloes that envelop massive and vuggy silica or that underlie the brecciated silica cap. Coarse-grained alunite also occurs in branching veins and locally is partly replaced by a later generation of fine-grained alunite. Silicified hydrothermal breccias associated with the alunite contain an estimated reserve of 30 tonnes of gold in rock that grades up to 4.5 g t &minus;1 Au. Seven alunite samples gave 40 Ar/ 39 Ar ages of 1.869 to 1.846 Ga, with various degrees of apparent minor Ar loss. Stable isotopic data require a magmatic-hydrothermal origin for the alunite, typical for high-sulfidation mineralization. The &delta; 34 S values of most samples of alunite range from 14.0&permil; to 36.9&permil;. Sulfur isotopic alunite&ndash;pyrite and oxygen isotopic alunite SO 4 &minus;OH temperatures range from 130 to 420 &deg;C. The &delta;D H 2 O and &delta; 18 O H 2 O values for alunite-forming hydrothermal fluids suggest a predominance of magmatic water, with a small meteoric contribution. A rare sample of supergene alunite has a &delta; 34 S value of 4.1&permil; and an 40 Ar/ 39 Ar age of 51.3&plusmn;0.1 Ma. Other than local foliation in the volcanic rocks and recrystallization of alunite near faults, the mineralization and associated alteration appears to have been remarkably undisturbed by later metamorphism and by supergene alteration. The Au mineralization was preserved because of burial by sediments and tuffs in taphrogenic basins that probably developed shortly after mineralization and were probably first exhumed at about 60 Ma. Because high-sulfidation mineralization forms at relatively shallow crustal levels, the discoveries in Tapaj&oacute;s province provide new perspectives for mineral exploration for the Amazonian and perhaps for other Precambrian cratons.

Chemical Geology