910 resultados para Mineral deposit


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A semi-detailed gravity survey was carried out over an area of 650 km(2) localized in the Eo-Neoproterozoic coastal zone of Paraiba State where 548 new gravity stations were added to the existing database. Gravity measurements were made with a LaCoste and Romberg model G meter with a precision of 0.04 mGal. The altitude was determined by barometric levelling with a fixed base achieving a 1.2 m measure of uncertainty, corresponding to an overall accuracy of 0.24 mGal for the Bouguer anomaly. The residual Bouguer map for a 7th degree regional polynomial showed a circumscribed negative anomaly coincident with a localized aero-magnetic anomaly and with hydro-thermally altered outcrops, near the city of Itapororoca. The 3D gravity modelling, constrained by geologic mapping was interpreted as a low density, fractured and/or altered material with a most probable volume of approximately 23 km(3), extending to about 8,500 m depth. This result is in accordance with a volcanic body associated with hydrothermal processes accompanied by surface mineralization evidence, which may be of interest to the mining industry.

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The mineral component of pelagic sediments recovered from the Indian Ocean provides both a history of eolian deposition related to climatic changes in southern Africa and a record of terrigenous input related to sediment delivery from the Himalayas. A composite Cenozoic dust flux record from four sites in the central Indian Ocean is used to define the evolution of the Kalahari and Namib desert source regions. The overall record of dust input is one of very low flux for much of the Cenozoic indicating a long history of climate stability and regional hyperaridity. The most significant reduction in dust flux occurred near the Paleocene/Eocene boundary and is interpreted as a shift from semiarid climates during the Paleocene to more arid conditions in the early Eocene. Further aridification is recorded as stepwise reductions in the input of dust material which occur from about 35 to 40 Ma, 27 to 32 Ma, and 13 to 15 Ma and correlate to significant enrichments in benthic foraminifer delta18O values. The mineral flux in sediments from the northern Indian Ocean, site 758, records changes in the terrigenous input apparently related to the erosion of the Himalayas and indicates a rapid late Cenozoic uplift history. Three major pulses of increased terrigeneous sediment flux are inferred from the depositional record. The initial increase began at about 9.5 Ma and continued for roughly 1.0 million years. A second pulse with approximately the same magnitude occurred from about 7.0 to 5.6 Ma. The largest pulse of enhanced terrigenous influx occurred during the Pliocene from about 3.9 to 2.0 Ma when average flux values were severalfold greater than at any other time in the Cenozoic.

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The Los Negritos porphyry copper deposit is located ~ 4 km to the northeast of Carmen de Andacollo Mine in the Chilean Cretaceous metallogenic belt. The mineralization is hosted in andesite of the Quebrada Marquesa Formation and a series of at least four early to intramineral porphyry intrusive rock types: plagioclase quartz biotite porphyry (P1b and P1a dated at 109.60± 0.75 Ma and 107.22± 0.40 Ma); plagioclase biotite porphyry (P2: 106.30 ± 0.47 Ma); and quartz plagioclase biotite porphyry (P3: 106.19 ± 0.42 Ma). These units are cut by late‐ to post‐mineral plagioclase‐hornblende porphyritic rocks (P4b: 106.20 ± 0.69 Ma and P4a: 106.50 ± 0.68 Ma). The earliest intrusive units (P1) were affected by an initial stage of K‐feldspar‐biotite alteration, with chalcopyrite, molybdenite (date at 108.5 ± 0.5 Ma) and gold (up to 0.11 ppm), and the surrounding volcanic host rock was overprinted by chlorite‐epidote dominated (propylitic) alteration. Subsequent to the P2 and P3 intrusion, these rocks were affected by albite and then a second stage of potassic alteration. The Ti and Ba contents in hydrothermal biotite are notably lower (typically Ti = 0.100‐0.144 a.p.f.u. and Ba = 0.001‐0.005 a.p.f.u) than in magmatic ones (generally Ti = 0.186‐0.222 a.p.f.u. and Ba = 0.014‐0.023 a.p.f.u.), and constitute an excellent discriminant of the nature of biotite. These early stages of alteration were overprinted by copper‐molybdenum bearing chlorite‐sericite alteration at 106.60 ± 0.5 Ma (Re‐Os age in molybdenite) and by quartz‐sericite‐pyrite veins (phyllic), respectively in the southwest and northeast areas. The average temperature associated with these two alteration facies is estimated around 305 °C. Weak albite‐calcite alteration, spatially associated with sulfosalts and distributed along the margins of P3, overprinted the phyllic facies. The intrusive rock units at the Los Negritos and Carmen de Andacollo deposits are geochemically classified as diorite to granodiorite with a calc‐alkaline magmatic affinity, and formed in a volcanic arc setting from partial melting of a metasomatized mantle wedge. They are interpreted to be cogenetic, and related to a common long‐lived magma chamber that emplaced during a period of tectonic inversion known as the Subhercynian, Peruvian or Pacific event.

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Interpolation techniques for spatial data have been applied frequently in various fields of geosciences. Although most conventional interpolation methods assume that it is sufficient to use first- and second-order statistics to characterize random fields, researchers have now realized that these methods cannot always provide reliable interpolation results, since geological and environmental phenomena tend to be very complex, presenting non-Gaussian distribution and/or non-linear inter-variable relationship. This paper proposes a new approach to the interpolation of spatial data, which can be applied with great flexibility. Suitable cross-variable higher-order spatial statistics are developed to measure the spatial relationship between the random variable at an unsampled location and those in its neighbourhood. Given the computed cross-variable higher-order spatial statistics, the conditional probability density function (CPDF) is approximated via polynomial expansions, which is then utilized to determine the interpolated value at the unsampled location as an expectation. In addition, the uncertainty associated with the interpolation is quantified by constructing prediction intervals of interpolated values. The proposed method is applied to a mineral deposit dataset, and the results demonstrate that it outperforms kriging methods in uncertainty quantification. The introduction of the cross-variable higher-order spatial statistics noticeably improves the quality of the interpolation since it enriches the information that can be extracted from the observed data, and this benefit is substantial when working with data that are sparse or have non-trivial dependence structures.

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Tectonic dynamics of metallogenetic fluids is a new crossed subjects among fluid geology, mineral deposit geology and structural geology, and is one of the major current projects of geosciences. It is mainly focused on structures and tectonic dynamic induced by fluid motion, variation of physical condition of fluids (such as temperature and pressure), and interaction between chemical component of fluids and wall rocks in the crust. It takes features of deformation and metamorphysim, which formed during interaction between fluids and rocks and have been perserved in rocks, as basic research objects. After studying types, orders, distributions and fabrics of these features, and analyzing and testing physical and chemical information from these features by some techniques, it is intended to reconstruct moving process of fluids, dynamics of interaction between fluids and rocks, and dynamics of mineralizations. Three problems of tectonic dynamics of metallogenetic fluids, which have not been paid much attentions before, have been studied and discussed in this report. Three relative topics are including: 1)Double-fracturing induced by thermal stress and pressure of fluids and mineralization of Gold-copper in Breccia Pipe at the Qibaoshan in Shandong Province; 2)Parting structures induced by K-metasomatism in the Hougou area, northwestern Heibei province; 3)Migration mechanism of dissolved mass in Fe&S-rich fluids in Hougou gold deposit in Heibei province. After a synthetical study of two years, the author has made some new processes and progresses. The main new advances can be summaried as the following: 1)Thermal stress of fluids formed by temperature difference between fluids and country rock, during upword migration process of fluids with high temperature and pressure, can make rock to break, and some new fractures, which surfaces were uasally dry, formed. The breccia pipe at the Qibaoshan area in Shandong province has some distinct texture of fluidogenous tectonics, the breccia pipe is caused by double-fracturing induced by thermal stress and pressure, distribution of gold-corpper ore bodies are controlled powerfully by fluidogenous tectonics in the breccia pipe. 2)The author discovered a new kind of parting structures in K-alterated rocks in the northwestern part of Hebei province. The parting structures have some distinct geometry and fabrics, it is originated from the acting and reacting fores caused by K-metasomatism. Namely, the crystallizations of metasomatic K-feldspars are a volume expansion process, it would compress the relict fluid bodies, and the pressures in the relict fluid bodies gathered and increased, when the increased pressure of the fluid relict bodies is bigger than the strength of K-feldspars, the K-feldspars were broken with the strong compression, and the parting structures formed. 3)Space position replacing is a important transport pattern of dissolved mass in Fe&S-rich fluid. In addition, basing on views of tectonic dynamics of metallogenic fluids, and time-space texture of fluid-tectonic-lithogenetic-mineralization of the known gold-corpper mineral deposit and the subvolcanic complex at Qibaoshan area in Shandong province, this report does a detail prodict of position-shape-size of two concealed ore-bearing breccia pipe.

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The Derni large Cu-Co-Zn sulfide deposit is occurred in the Derni melange belt, which is located in the eastern section of the A'nyemaqen ophiolite melange belt. The Derni deposit is hosted in the mantle peridotites and is very special in the world. Because the studying area is of very bad natural environment and very low geological research, the geotectonic setting and genesis of the deposit have long been debated. This paper studied these two questions and answered them. The research is of great significance to reveal impotant information of deep geology, crust-mantle interaction and geotectonic evolution, to enrich theories in the study of mineral deposit and provide scientific basic data for exploration and exploit of this kind of deposit. Based on the series of new achievements and new cognitions, to start with the geologic setting of the Derni deposit, through detailed field, tectonics, petrology, geochemistry, isotopic geochronology, microfossil, and study of mineral deposit, belongs to a melange belt, including mantle peridotites slice with ore, Late Precambrian sandstone and slate slice, metamorphic rock slice. 2. Petrological and geochemical characteristics indicate that the Derni mantle peridotite is not ophiolite mantle peridotite, but is occurred under the continental crust. 3. The U-Pb isotopic age of single-grain zircon form the accumulative rock suggests that the Derni mantle peridotite were formed in 747±10Ma, and underwent a great period of metamorphic process in 441.5±2.5Ma. 4. Microfossil assemblage from the carbonaceous slate belongs to Late Precambrian. Through petrography and petrochemistry, sandstone and slate were formed in the continental margin. 5. Sideronitic texture, which is first discovered in this study, reveals the characteristics of magmatic liquation. 6. Fluid inclusion explosion temperature of pyrite is in the range of -6.15~+6.64‰, and Pb isotope is consistent with mantle peridotite, which suggest ore-forming materials are from the mantle. To sum up, the upper mantle was melting partially, when it was metasomated by the mantle fluids with abundant Cu, Co, Zn, S, Au and LREE etc. The pockets of magma became enlarged by mantle tenacity shearing, and the pockets of magma occurred magmatic differentiation in the stable field, then the magma and ore pulp together with mantle refractory remnant dirpired and crystallized in the shallow part of the crust.

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O depósito mineral de Sapucaia, situado no município de Bonito, região nordeste do Estado do Pará, é parte de um conjunto de ocorrências de fosfatos de alumínio lateríticos localizados predominantemente ao longo da zona costeira dos estados do Pará e Maranhão. Estes depósitos foram alvos de estudo desde o início do século passado, quando as primeiras descrições de “bauxitas fosforosas” foram mencionadas na região NW do Maranhão. Nas últimas décadas, com o crescimento acentuado da demanda por produtos fertilizantes pelo mercado agrícola mundial, diversos projetos de exploração mineral foram iniciados ou tiveram seus recursos ampliados no território brasileiro, dentre estes destaca-se a viabilização econômica de depósitos de fosfatos aluminosos, como o de Sapucaia, que vem a ser o primeiro projeto econômico mineral de produção e comercialização de termofosfatos do Brasil. Este trabalho teve como principal objetivo caracterizar a geologia, a constituição mineralógica e a geoquímica do perfil laterítico alumino-fosfático do morro Sapucaia. A macrorregião abrange terrenos dominados em sua maioria por rochas pré-cambrianas a paleozóicas, localmente definidas pela Formação Pirabas, Formação Barreiras, Latossolos e sedimentos recentes. A morfologia do depósito é caracterizada por um discreto morrote alongado que apresenta suaves e contínuos declives em suas bordas, e que tornam raras as exposições naturais dos horizontes do perfil laterítico. Desta forma, a metodologia aplicada para a caracterização do depósito tomou como base o programa de pesquisa geológica executada pela Fosfatar Mineração, até então detentora dos respectivos direitos minerais, onde foram disponibilizadas duas trincheiras e amostras de 8 testemunhos de sondagem. A amostragem limitou-se à extensão litológica do perfil laterítico, com a seleção de 44 amostras em intervalos médios de 1m, e que foram submetidas a uma rota de preparação e análise em laboratório. Em consonância com as demais ocorrências da região do Gurupi, os fosfatos de Sapucaia constituem um horizonte individualizado, de geometria predominantemente tabular, denominado simplesmente de horizonte de fosfatos de alumínio ou crosta aluminofosfática, que varia texturalmente de maciça a cavernosa, porosa a microporosa, que para o topo grada para uma crosta ferroalumino fosfática, tipo pele-de-onça, compacta a cavernosa, composta por nódulos de hematita e/ou goethita cimentados por fosfatos de alumínio, com características similares aos do horizonte de fosfatos subjacente. A crosta aluminofosfática, para a base do perfil, grada para um espesso horizonte argiloso caulinítico com níveis arenosos, que repousa sobre sedimentos heterolíticos intemperizados de granulação fina, aspecto argiloso, por vezes sericítico, intercalados por horizontes arenosos, e que não possuem correlação aparente com as demais rochas aflorantes da geologia na região. Aproximadamente 40% da superfície do morro é encoberta por colúvio composto por fragmentos mineralizados da crosta e por sedimentos arenosos da Formação Barreiras. Na crosta, os fosfatos de alumínio estão representados predominantemente pelo subgrupo da crandallita: i) série crandallita-goyazita (média de 57,3%); ii) woodhouseíta-svanbergita (média de 15,8%); e pela iii) wardita-millisita (média de 5,1%). Associados aos fosfatos encontram-se hematita, goethita, quartzo, caulinita, muscovita e anatásio, com volumes que variam segundo o horizonte laterítico correspondente. Como os minerais pesados em nível acessório a raro estão zircão, estaurolita, turmalina, anatásio, andalusita e silimanita. O horizonte de fosfatos, bem como a crosta ferroalumínio-fosfática, mostra-se claramente rica em P2O5, além de Fe2O3, CaO, Na2O, SrO, SO3, Th, Ta e em terras-raras leves como La e Ce em relação ao horizonte saprolítico. Os teores de SiO2 são consideravelmente elevados, porém muito inferiores aqueles identificados no horizonte argiloso sotoposto. No perfil como um todo, observa-se uma correlação inversa entre SiO2 e Al2O3; entre Al2O3 e Fe2O3, e positiva entre SiO2 e Fe2O3, que ratificam a natureza laterítica do perfil. Diferente do que é esperado para lateritos bauxíticos, os teores de P2O5, CaO, Na2O, SrO e SO3 são fortemente elevados, concentrações consideradas típicas de depósitos de fosfatos de alumínio ricos em crandallita-goyazita e woodhouseítasvanbergita. A sucessão dos horizontes, sua composição mineralógica, e os padrões geoquímicos permitem correlacionar o presente depósito com os demais fosfatos de alumínio da região, mais especificamente Jandiá (Pará) e Trauíra (Maranhão), bem como outros situados além do território brasileiro, indicando portanto, que os fosfatos de alumínio de Sapucaia são produtos da gênese de um perfil laterítico maturo e completo, cuja rocha fonte pode estar relacionada a rochas mineralizadas em fósforo, tais como as observadas na Formação Pimenteiras, parcialmente aflorante na borda da Bacia do Parnaíba. Possivelmente, o atual corpo de minério integrou a paleocosta do mar de Pirabas, uma vez que furos de sondagem às proximidades do corpo deixaram claro a relação de contato lateral entre estas unidades.