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  • 1
    Electronic Resource
    Electronic Resource
    Springer
    Mineralium deposita 28 (1993), S. 136-145 
    ISSN: 1432-1866
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Notes: Abstract Ore microscopic studies reveal two main parageneses in the banded iron-formations of Nigeria. In the low-grade metamorphic schist belts of northern Nigeria, a magnetitic paragenesis comprising magnetite, silicates (grunerite and garnet), and quartz is developed. Magnetite which sometimes contains carbonate inclusions is markedly martitized. In contrast, the higher-grade metamorphic terrains of central Nigeria exhibit a different paragenesis consisting of hematite (including specularite) and quartz. Here, minerals of the magnetitic paragenesis only occur as relics. The protolith of these banded iron-formation occurrences envisioned as carbonate-containing sediments, with high concentrations of Fe and Si, and lower contents of Ca, Mg, Al (and also Mn where they are associated with gondite) underwent both submarine weathering and metamorphic changes in their evolution. During submarine weathering, sheet silicates and porphyroblasts of Fe-Mn-(Mg-Ca)-carbonate solid solutions, were formed. At the outset of a regional metamorphic episode, grunerite, garnet and porphyroblastic magnetite were developed. Magnetite formed at the expense of carbonate and sheetsilicates but was later martitized under post-metamorphic conditions. In the course of a later heterogeneous tectono-metamorphic event, martitized magnetite was transformed as follows: under low-grade metamorphism, as observed in the northern Nigerian schist belts, recrystallization into coarse-grained martite occurred, while at the higher grades of metamorphism in central Nigeria, recrystallization into hematite and, ultimately, specularite, took place. This relationship between magnetite and hematite has also been observed in many other banded iron-formations from different parts of the world, thus underscoring its widespread significance. Magnetite crystallizes first at the expense of carbonate and silicate minerals and hematite is subsequently derived from it directly or generally through martitization. This metamorphic phenomenon contradicts the common assumption that magnetite and hematite in banded iron-formations are invariably the products of direct precipitation from solution, in response to changes in environmental Eh/pH or different (reducing/oxidizing) diagenetic alterations of precipitated ferric hydroxide.
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  • 2
    ISSN: 1432-1866
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Notes: Abstract The Campanian-Maastrichtian Agbaja Ironstone Formation of the Nupe basin, Nigeria, forms a major part of the about 2 billion tons of iron ore reserves of the Middle Niger Embayment. The ironstone deposits were previously reported to be similar to the Minette-type ironstones because of their depositional patterns, composition and inferred origin. Four rock-types are recognized within the Agbaja Ironstone Formation: ooidal pack-ironstone, pisoidal pack-ironstone, mud-ironstone and bog iron ore. In the ironstones, kaolinite of both the groundmass and the ooids/pisoids is of lateritic origin, whereas the associated quartz, mica and heavy minerals are of detrital origin. Ooids and pisoids were formed by mechanical accretion of platy kaolinite crystals by rolling on the sea floor in a near-shore environment, and were subsequently transported and deposited together with a fine-grained kaolinitic groundmass. Pyrite (mainly framboidal) and siderite (both exclusively occurring as pseudomorphs of goethite and/or hematite) are diagenetic whereas goethite is post-diagenetic in origin, resulting from the ferruginization of the kaolinitic precursor. Crandallite-gorxeicite-goyazite, bolivarite and boehmite are also post-diagenetic in origin. Hematite was formed from the dehydration of goethite, whereas gibbsite (restricted to the upper part of the deposit) is of recent and in situ lateritic origin. The presence of newly formed authigenic pyrite and siderite (now replaced by hematite and goethite) are indicators of a reducing environment during diagenesis. The absence of diagenetic chamositic clay minerals, evidently caused by a low Mg concentration, suggests that fully marine conditions were not established during sedimentation. This is supported by the lack of fossils, brecciated shell materials and bioturbation features in the deposit. Reworking and redeposition of the primary constituents are inferred from broken pisoids, nuclei of pisoidal/ooidal fragments in pisoids and high iron concentrations present in the pisoids and ooids compared to that of the groundmass. These observations indicate that the Agbaja ironstone deposits of the Lokoja study area exhibit some environmental and mineralogical characteristics that are markedly different from other known deposits of Minette-type, where primary chamositic clay minerals generally form the protore for the ironstones. The recognition of kaolinite as the precursor constituent and the occurrence of similar deposits of the same age (Late Cretaceous) in Nigeria, Sudan and Egypt have implications for the paleoenvironmental interpretations of Phanerozoic ironstone deposits.
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  • 3
    ISSN: 1438-1168
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Description / Table of Contents: Zusammenfassung Die iranischen Apatit-führenden Magnetitlagerstätten von Gole Gohar und Hamadan liegen in der Sanandaj-Sirjan Zone und sind etwa 1200 km von einander entfernt. Sie zeigen auffällige mineralogische und texturelle Gemeinsamkeiten. Die Erzkörper sind magmatischen Ursprungs und als Erzmagmen intrudiert. Im Magnetit eingeschlossen finden sich neben Apatit weitere Mineralien wie z. B. Amphibole, Chlorite, Serpentin, Albit, Karbonate, Fluorit, Sulfide (Pyrrhotin mit Pentlandit, Chalkopyrit und Sphalerit) und in orientierter Verwachsung mit Magnetit Brucit und Spinell sowie zonar aufgebaute Spinelle, deren Kern aus einem ChromitHercynit-Magnetit-Mischkristall besteht, der oberhalb von 900°C synthetisiert werden kann. Außer in Gesteinen, die zum präkambrischen Basement gehören (wie z. B. Gneis, Amphibolit und Marmor), fehlen in den Erzkörpern und den begleitenden Gesteinen metamorphe Gefügemerkmale. Für die iranischen Erzkörper sind der hohe P2O5-Gehalt (in Form von Apatit, Holtedahlit, Rockbridgeit und Lipscombit) sowie erhöhte Gehalte an Fluiden (H2O, F, CO2, und B2O3) charakteristisch. Diese Bestandteile, die mineralisiert in Form von Wasserbzw. Fluor-haltigen Mineralien (z. B. Chlorit, Amphibole, Brucit und Apatit), Fluoriden (Fluorit), Karbonaten (Magnesit, Dolomit, Ankerit und Calcit) und Boraten (Turmalin, Asharit und Vonsenit) vorliegen, sind vermutlich die Voraussetzung dafür, daß ungewöhnlich stark ausgeprägte Differentiationsvorgänge auftreten können. Diese führen zur Bildung und schließlich zur Abtrennung einer mobilen Magnetit schmelze von einem Magmenkörper unbekannter Zusammensetzung. Hinweise für eine derartige Trennung sind Kumulusgefüge von Forsterit im Magnetit, Pyroxen im Pyrrhotin, Magnetit im Pyrrhotin und umgekehrt. Die Erzkörper sind mit ultramafischen, calcalkalischen und anderen, meist stark metasomatisch alterierten Gesteinen sowie Karbonaten assoziiert. Hinweise, die für Karbonate auf einen karbonatitischen Ursprung schließen lassen, sind: verschiedene Karbonatgenerationen mit unterschiedlicher chemischer Zusammensetzung, Verheilung von brecciiertem Magnetit bzw. Nebengestein mit Karbonaten, Wabengefüge der Karbonate, Dolomit-Amygdales und die Zusammensetzung der stabilen Isotope von Karbonaten, metasomatische Alterationen, Fenitisierung und Karbonatisierung der Nebengesteine; das Auftreten von Apatit, Fluorit, Phlogopit, Valleriit und Baddeleyit. Ein ultramalisches “environment” wird durch häufig auftretende Chlorite angezeigt sowie durch andere vorwiegend Mg-reiche Mineralien wie z. B. Phlogopit, Brucit, Forsterit und Chondrodite. Hornblendite treten in drei Typen auf: Typ 1 besteht aus Ca-reichen, Alkali-führenden Hornblenden, Typ 11 aus Aktinolith, während Typ 111, für den ein Fließgefüge charakteristisch ist, ebenfalls aus Ca-reichen und Alkali-führenden Hornblenden besteht. Aktinolith-Hornblendit wird auf durch überkritische Lösungen veränderte Pyroxenite zurückgeführt, während Diorite epidotisiert und vermutlich ehemalige Peridotite chloritisiert oder auch teilweise serpentinisiert sind. Die Eisenerzlagerstätten des Bafq Distrikts der Zentraliranischen Mikroplate haben einen vergleichbaren Ursprung und sind daher ebenfalls dem Kiruna Typ zuzuordnen. Erstmals untersuchtes Bohrkernmaterial dieses Gebietes (von der Nord-Anomalie stammend) besteht aus vorwiegend Magnetit, Aktinolith, Chlorit, Calcit und Apatit.
    Notes: Summary The magnetite-apatite deposits of Hamadan and Gole Gohar situated in the Sanandaj-Sirjan zone of Iran about 1200 km apart, show striking mineralogical and textural similarities. The orebodies are of magmatic origin and have intruded as ore magmas. The magnetite-apatite deposits are associated with ultramafic, calcalkaline and other rocks with a strong carbonate enrichment (magnesite, dolomite, ankerite, and calcite), more pronounced in Hamadan. Characteristics supporting the association with carbonatite are: multiple carbonate generations with differing compositions, breccias healed by carbonate, comb-texture of carbonate, amygdales of dolomite, the stable isotope composition of carbonate; metasomatic alteration, fenitization and carbonatization of the associated rocks; the occurrence of apatite, fluorite, phlogopite, valleriite and baddeleyite. An ultramafic environment is indicated by the exclusively Mg-rich nature of abundant chlorite and other Mg-rich minerals (e.g. phlogopite, brucite, forsterite and chondrodite). Hornblendite (type 1) consisting of Ca-rich and alkaline-bearing amphibole with minor phlogopite, apatite, and tourmaline (Gole Gohar) is the chief alkaline rock type. Hornblendite (type II) (fiole Gohar and Hamadan) is predominated by actinolite which may contain minor concentrations of sodium and originated from pyroxenite by late stage supereritical solutions. Other rocks are flow-textured hornblendite (type III) which contains plagioclase and biotite (Hamadan) and rocks which are strongly metasomatically altered. These are epidotisized diorite (Hamadan) and probably peridotite (fiole Gohar) which is chloritisized. The associated metamorphic rocks (gneiss, amphibolite and marble) belong to the Precambrian basement of the Sanandaj-Sirjan zone. Magnetite carries many inclusions such as apatite, amphiboles, chlorite, albite, carbonates, brucite and spinel exsolutions. Additionally, zoned magnetite crystals occur in which the core consists of a chromite-hercynite-magnetite solid solution which formed at a temperature higher than 900°C. The orebodies and the associated rocks (apart from those which belong to the Precambrian basement) do not show metamorphic textures. Magnetite crystallized from a melt and forms foam texture which resulted from triplejunction configuration. Brecciation of compact magnetite is common. A characteristic feature of the Iranian deposits is the presence of high P2O5 and volatile-concentrations (H2O, F, CO, and B2O3) in the original melt. These components are consistent with its pronounced capacity to differentiate and the separation of the mobile magnetite-apatite melt. Indications of this are cumulus textures (forsterite in magnetite, pyroxene in pyrrhotite, magnetite in pyrrhotite and vice versa). The iron deposits in the Bafq district of the central-east Iranian microplate probably have the saine origin. Among the deposits, drill core samples of the North Anomaly are composed of magnetite, actinolite, chlorite, calcite, apatite, and other minerals.
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  • 4
    Electronic Resource
    Electronic Resource
    Springer
    Mineralogy and petrology 45 (1991), S. 131-144 
    ISSN: 1438-1168
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Description / Table of Contents: Zusammenfassung Es werden feldgeologische und mineralogische Informationen von einer präkambrischen Eisenlagerstätte in Südwest-Nigeria präsentiert, und ein genetisches Model vorgestellt. Die Kakun Lagerstätte stellt eine Ti-Magnetit Mineralisation dar, die an der Basis einer Amphibolitabfolge konzentriert ist. Die Amphibolite gehören zu einer im Groß-Maßstab gebänderten Metasediment-Orthogneis Serie von Eburnean-Alter (ca. 2000 m.y.). Diese Serie wird von konkordanten und diskordanten granitischen bis granodioritischen Intrusionen und inkludierten Pegmatiten und Apliten (ca. 600 m.y.) durchbrochen. Die vererzte Zone ist durch Konzentration von frühgebildeten Schweremineralien, Cumulat- und ophitischen Texturen gekennzeichnet; die Amphibolitabfolge zeigt Einregelung der mafischen Mineralkomponenten, und ein tripple junction Mosaik der felsischen Gemengteile. Diese Charakteristika der Erz-Zone und der Amphibolite werden mit einem zweiphasigen Model erklärt: eine Eburnean synkinematische, magmatische Phase und eine Pan-Afrikanische, deformative metamorphe Phase. Die erste Phase umfaßt die Intrusion eines gabbroischen Sills unter hochgradigen Metamorphosebedingungen, Mineralsegregation innerhalb des Sills in eine erzreiche Basis, verursacht durch Kristall-Absinken während der Konsolidierung, und schließlich die Injektion eines anorthositischen Magmenpulses in die Erzzone im post-Konsolidierungsstadium. Die zweite Phase hat unter mittelgradigen Metamorphosebedingungen und heterogener Deformation stattgefunden. Kompentenz-Unterschiede und das stellenweise Eindringen von Wasser hat in dieser Phase zu Scherung und Amphibolitisierung des erzarmen, hangenden Anteils des Sills geführt.
    Notes: Summary Field and mineralogical information concerning a Precambrian iron deposit in Kakun, southwestern Nigeria is presented and a genetic model is advanced. The Kakun deposit consists of titaniferous magnetite concentrated at the base of an amphibolite sheet within a large-scale banded metasediment-orthogneiss suite of Eburnean (ca. 2000 Ma) age. The suite is truncated by concordant and discordant Pan-African (ca. 600 Ma) granitic to dioritic intrusives including pegmatites and aplites. The ore-grade zone is marked by preferential concentration of early formed heavy minerals as well as cumulate and ophitic textures, while the host amphibolite exhibits preferred mafic mineral alignment and triple junction mosaic of its felsic mineral matrix. These relationships are here explained in a two-stage model comprising an Eburnean synkinematic magmatic phase and a Pan-African deformation-metamorphic phase. The first stage involved the intrusion of a gabbroic magma as a sill into pre-existing rocks under high grade metamorphic conditions; mineral segregation of the sill into an ore-rich base by crystal settling during consolidation; followed by a post-consolidation pulse of anorthosite melt injection into the ore zone. The second stage occurred under conditions of medium grade metamorphism and heterogeneous deformation. Competence, difference and localised access of water during this stage led to preferential shearing and amphibolitisation of the ore-poor upper part of the sill.
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  • 5
    ISSN: 1438-1168
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Description / Table of Contents: Zusammenfassung Die Blei-Zink-Lagerstätte Abakaliki im Unteren Benue-Graben (Nigeria) ist die größte einer Reihe von durch Bruchstrukturen bestimmten Buntmetallagerstätten innerhalb der unterkretazischen (Albian) Asu River Group Shales. Geländebeobachtungen, Erzmi-kroskopie undzeigen, Mikrosondenanalysen zeigen, daß die Gangmineralisation mit der Ablagerung von diagenetischem Markasit, Pyrit und, in kleinerem Ausmaß gel-ähnlicher kolloformer Schalenblende und Bleiglanz, besonders an den Kontaktzonen zwischen Gängen und Nebengestein begonnen hat. Darauf folgte ein Stadium der Erzablagerung, wobei es hauptsächlich zur Bildung von Zinkblende, Bleiglanz, Kupferkies und Pyrit kam. Bournonit und Boulangerit kommen als Nebengemengteile vor. Schließlich gab es eine spätere Bildung von komplexen Verwachsungen, die aus Bornit, Kupferglanz, Enargit und Tennantit bestehen. Außerdem kam es zum Absatz eines Blei-Eisenführenden Kupfersulfids und eines Kupfer-Wismut-Sulfids, dessen Zusammensetzung mit der von Wittichenit (Cu6B22S6) übereinstimmt, dessen optische Parameter jedoch anders sind. Die späten Kupfersulfide und Sulfosalze wurden durch Verdrängung von früheren Tieftemperaturerzen (ca. 170°C) der Hauptphase gebildet, wo die Temperaturen mindestens bis auf 230°C anstiegen.
    Notes: Summary The Abakaliki lead-zinc deposit in the lower Benue Trough (Nigeria) represents the largest of a series of fracture controlled base metal deposits within the Lower Cretaceous (Albian) Asu River Group shales. Field evidence, ore microscopy and electron microprobe analysis of the lodes, suggest that the vein mineralization commenced with pre-ore precipitation of diagenetic marcasite, pyrite and minor gel-like colloform textured schalenblende and galena especially at the vein/wall rock contacts. This was succeeded by an ore stage consisting mainly of sphalerite, galena, chalcopyrite and pyrite. Accessories include bournonite and boulangerite. There was also a later introduction of complex intergrowths comprising bornite, chalcocite, enargite, and tennantite. In addition a lead/iron bearing copper sulphide and a copper bismuth sulphide of wittichenite composition (Cu6Bi2SO6), the optical parameters of which do not agree with those of wittichenite, were also introduced. The late stage copper sulphides and sulphosalts were formed as replacements of earlier lower temperature (ca. 170°C) main phase mineralization, when temperature rose in minimum up to 230°C.
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  • 6
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    Springer
    Mineralium deposita 31 (1996), S. 113-122 
    ISSN: 1432-1866
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Notes: Abstract Field relationships as well as petrographical and geochemical considerations form the basis of a model for the origin of the protoliths of the iron-formations and the associated phyllitic host rock of the Palaeoproterozoic schist belts of northern Nigeria. The iron-formations which consist of both the magnetite-subfacies and silicatefacies occur as relatively small, sporadic tabular bodies throughout the belts. They are concordantly interbanded with metasedimentary phyllites with which they share common metamorphic and deformational imprints. The iron-formations have high contents of Mn, Ca, Fe and P2O5 and low concentrations of alkalis (Na,K, Rb) Ba and Sr, Ti, Al and Si, whereas the phyllite exhibits exactly the opposite character. These results and other features (e.g. the composition of tourmaline in the phyllite and the occurrence of hydroclastic Cr-Mn-spinel and sulphides in the iron-formation) indicate a supply of materials from two different sources to the marine basin of Nigeria probably during Birimian time: slow but continuous deposition of continentally derived material of pelitic to psammitic composition; and rapid, sometimes intermittent, sporadic pulses of submarine-volcanic exhalations. During regional metamorphism (probably of Eburnian age) at greenschist to lower amphibolite fades conditions, the continental materials were transformed into phyllites and the mudstone-like sediments derived from volcanic exhalations into iron-formations. In the northern Nigerian schist belts two types of metamorphic parageneses in the iron-formations are recognized, both with various subtypes and without transitions between these two facies: (1) silicate-rich parageneses without magnetite (silicatefacies) and (2) magnetite-rich parageneses (magnetite-subfacies). In contrast to these parageneses, the iron-formations in the higher-grade metamorphic terrains of central Nigeria turn out to be hematitic (hematite-subfacies), and are derived from magnetite-bearing iron-formations by a second tectono-metamorphic event of Pan-African age (Mücke and Annor 1993). Whole-rock analyses of the Nigerian iron-formations explain the abundance of garnet (mainly spessartine) and clearly show that the formation of metamorphic minerals depended not only on temperature and pressure but also on the existing redox conditions. These environmental conditions controlled the formation of either magnetite parageneses (low redox conditions) or silicate parageneses without magnetite (high redox conditions). The environmental conditions are also an indication that magnetite (and hematite) could not have been constituents of the original sedimentary protolith of the Nigerian schist belts, but are exclusively of metamorphic origin.
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  • 7
    ISSN: 1432-1866
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences
    Notes: Abstract The manganese deposit of Nsuta, in the Ashanti Belt of Southern Ghana, is sandwiched between Birimian metasedimentary rocks. The metasedimentary rocks contain interbedded carbonate-rich layers, which exhibit a characteristic banded appearance near the contact with the orebody. The orebody is a carbonate-type manganese-formation and in terms of origin is considered here as a Mn-analogue of the volcanogenic-exhalative Algoma type iron-formation. The protolith of the orebody (chemical sediment including Fe-bearing rhodochrosite and alabandite) is envisioned to have been formed in a marine basin with relatively high CO2 activity and Eh-pH conditions were extremely low (Eh 1 to −0.6 Volt and pH 8 to 11) during Birimian times (2170–2180 Ma). These conditions occurred immediately below the shelf break in a shallow-marine environment. Subsequent submarine weathering (halmyrolysis) followed later by metamorphism of Eburnian age (2100 Ma) led to the formation of Mg-Ca-Fe-bearing rhodochrosite, the dominant mineral in the orebody. Other minerals of the orebody are: sulfides (e.g. two generations of alabandite sphalerite, pyrite, millerite, niccolite, gersdorffite, and molybdenite), oxides and hydroxides (vanadium-bearing jacobsite, galaxite; brucite, Mn2+-todorokite), Mn-silicates and an unknown boron mineral. Pyrochroite, possibly preceded by manganosite, occurs as a retrograde mineral. This mineral assemblage forms the protore of the Nsuta deposit. Opaque Mn4+-todorokite replacing Mn2+-todorokite, manganite, manganomelane, pyrolusite and nsutite which formed at the expense of rhodochrosite, are of supergene origin and represent the economic part of the deposit. The orebody is interleaved between the associated pelitic-psammitic metasedimentary rocks suggesting that its protoliths was deposited over a time interval during the sedimentation of the latter. Both units underwent subsequent processes (submarine weathering and metamorphism) together. The compositional differences between the orebody with high Mn and CO2 and low Si and Al contents relative to the metasedimentary rocks are explained by a model involving the continuous sedimentation of continent-derived materials (protolith of the metasedimentary rocks). During this time a pulsatory phase of submarine volcanism and consequent precipitation of materials of essentially volcanogenic-exhalative origin occurred (protolith of the orebody). From the exhalations, the carbonate minerals in both the manganese-rich sediments and the metasedimentary host-rocks (in the latter in the form of layers and disseminations leading to relatively high concentrations of Mn, Ca and CO2) were precipitated.
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  • 8
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    Naturwissenschaften 56 (1969), S. 34-35 
    ISSN: 1432-1904
    Source: Springer Online Journal Archives 1860-2000
    Topics: Biology , Chemistry and Pharmacology , Natural Sciences in General
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  • 9
    Publication Date: 2011-08-19
    Description: Author(s): A. A. Voronin, S. Ališauskas, O. D. Mücke, A. Pugžlys, A. Baltuška, and A. M. Zheltikov Off-axial beam dynamics of ultrashort laser pulses in a filament enable a radical energy-throughput improvement for filamentation-assisted pulse compression. We identify regimes where a weakly diverging wave, produced on the trailing edge of the pulse, catches up with a strongly diverging component,... [Phys. Rev. A 84, 023832] Published Thu Aug 18, 2011
    Keywords: Quantum optics, physics of lasers, nonlinear optics, classical optics
    Print ISSN: 1050-2947
    Electronic ISSN: 1094-1622
    Topics: Physics
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  • 10
    Publication Date: 2012-07-15
    Print ISSN: 1802-6222
    Electronic ISSN: 1803-1943
    Topics: Geosciences
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