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  • PANGAEA  (42)
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  • 1
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    PANGAEA
    In:  Supplement to: Henjes-Kunst, Friedhelm; Koepke, Jürgen; Läufer, Andreas; Estrada, Solveig; Phillips, Glen; Piepjohn, Karsten; Kosanke, Dominique (2014): The Ross-orogenic Tiger Gabbro (northern Victoria Land, Antarctica): Insights into the lower crust of a Cambrian island arc? Polarforschung, 84(1), 23-38, hdl:10013/epic.44855.d001
    Publication Date: 2023-05-12
    Description: Subduction related mafic/ultramafic complexes marking the suture between the Wilson Terrane and the Bowers Terrane in northern Victoria Land (Antarctica) are well-suited for evaluating the magmatic and structural evolu- tion at the Palaeo-Pacific continental margin of Gondwana. One of these intru- sions is the "Tiger Gabbro Complex" (TGC), which is located at the southern end of the island-arc type Bowers Terrane. The TGC is an early Palaeozoic island-arc related layered igneous complex characterized by extraordinarly fresh sequences of ultramafic, mafic and evolved lithologies and extensive development of high-temperature high-strain zones. The goal of the present study is to establish the kinematic, petrogenetic and temporal development of the TGC in order to evaluate the magmatic and structural evolution of the deep crustal roots of this Cambrian-aged island-arc. Fieldwork during GANOVEX X was carried out to provide insight into: (i) the spatial relations between the different igneous lithologies of the TGC, (ii) the nature of the contact between the TGC and Bowers Terrane, and (iii) the high-temperature shear zones exposed in parts of the TGC. Here, we report the results of detailed field and petrological observations combined with new geochronological data. Based on these new data, we tentatively propose a petrogenetic-kinematic model for the TGC, which involves a two-phase evolution during the Ross orogeny. These phases can be summarized as: (i) an early phase (maximum age c. 530 Ma) involving tectono-magmatic processes that were active at the deep crustal level represented by the TGC within the Bowers island arc and within a general NE-SW directed contractional regime and (ii) a late phase (maximum age c. 490 Ma) attributed to the late Ross orogenic intrusion of the TGC into the higher-crustal metasedimentary country rocks of the Bowers Terrane under NE-SW directed horizontal maximum stress and subsequent cooling.
    Type: Dataset
    Format: application/zip, 5 datasets
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  • 2
    Publication Date: 2023-01-13
    Description: In the absence of a complete profile through fast-spreading modern oceanic crust, we established a reference profile through the paleo crust of the Samail Ophiolite (Sultanate of Oman), which is regarded as the best analogue for fast-spreading oceanic crust on land. To establish a coherent data set, we sampled hard rocks in the Wadi Gideah in the Wadi-Tayin massif from the mantle section up to the sheeted dikes. This paper reports our studies of the lower crust, a 5 km thick pile of gabbros, focusing on petrographic features and on the results of mineral analyses. We collected petrographical data from thins sections of the samples by optical microscope and performed also EPMA analyses (Electron Probe Microanalysis) of the mineral phases of the rocks. The samples have been collected during field campaigns from 2010 to 2015, and the data have been collected in a period from 2013 to 2021.
    Keywords: Electronprobe Microanalysis; Fast-spreading oceanic crust; gabbro; Mineral Analyses; Oman Ophiolite; Petrographic Data; Samail Ophiolite
    Type: Dataset
    Format: application/zip, 3 datasets
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  • 3
    Publication Date: 2023-02-08
    Description: As largest and best-exposed paleo-fast-spread oceanic crust on land, the Samail ophiolite in the Sultanate of Oman represents an ideal natural laboratory for investigating processes at fast-spreading mid-ocean ridges. We studied two layered gabbro sequences from different stratigraphic depths: one from the middle of the plutonic crust showing dm-scale modal layering with olivine abundance gradually decreasing from layer base to top (Wadi Somerah, Sumail block) and one located near the crust-mantle boundary showing mm-scale layers being enriched in olivine (Wadi Wariyah, Wadi Tayin block). Petrographic analyses were performed at the Institut für Mineralogie (Leibniz Universität Hannover, Germany) for thin-section description. Plagioclase and Clinopyroxene are present in all samples, most of the samples also include olivine as primary phase and are therefore described as olivine gabbro. The olivine content increases per layer towards the layer base. Grain sizes of the three primary phases olivine, plagioclase and clinopyroxene vary between 0.2 and 5 mm. Olivine usually forms the largest grains, plagioclase the smallest ones. The grain shapes are generally subhedral, their habit is prismatic or, occasionally, irregular or elongated. Some olivine grains show reaction rims or contain plagioclase chadacrysts. Poikilitic clinopyroxene also containing plagioclase as chadacrysts is very common. The described phases are only the primary minerals not taking the low to medium degree of alteration and therefore presence of secondary phases into account.
    Keywords: DEPTH, sediment/rock; Drilling/coring; Elevation of event; Event label; Feature; Formation of Layered Gabbros; Grain size, mean; Habit; Latitude of event; Layer number; Longitude of event; Lower Oceanic Crust; Main Lithology; Mode, area; Mode, grain size, description; OM10-Sam; OM10-War; Oman; Oman Ophiolite; Polarisation microscopy (Leica Leitz DMRP); Sample code/label; Shape; Wadi Somerah, Sumail block; Wadi Wariyah, Wadi Tayin block
    Type: Dataset
    Format: text/tab-separated-values, 746 data points
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  • 4
    Publication Date: 2023-02-12
    Keywords: According to Gillis et al. (2014); Amphibole, altered; Amphibole, habit; Amphibole, primary original; Amphibole, shape; Clinopyroxene, altered; Clinopyroxene, grain size; Clinopyroxene, habit; Clinopyroxene, modal; Clinopyroxene, shape; Comment; Depth above Mohorovicic discontinuity; Electronprobe Microanalysis; Event label; Fast-spreading oceanic crust; gabbro; Grain size description; HAND; Iron-titanium oxides, habit; Iron-titanium oxides, shape; Latitude of event; Longitude of event; Mineral Analyses; Minerals, total alteration; Minerals, total modal primary; Olivine, altered; Olivine, grain size; Olivine, habit; Olivine, modal; Olivine, shape; OM10-A02; OM10-A03; OM10-A04; OM10-A05A; OM10-A05B; OM10-A06; OM10-A10; OM10-A11; OM10-A11-1a; OM10-A11-1b; OM10-A11-1c; OM10-A11-1d; OM10-A11-1e; OM10-A11-1f; OM10-A11-1i; OM10-A11-1j; OM10-A11-1l; OM10-A11-1m; OM10-A11-1n; OM10-A11-1o; OM10-A11-1p; OM10-A11-1q; OM10-A11-1r; OM10-A11-1s; OM10-A11-1t; OM10-A11-1u; OM10-A11-1v; OM10-A11-1w; OM10-A11-1x; OM10-A11-2; OM10-A11-3; OM10-A12-1A; OM10-A12-1B; OM10-A12-1C; OM10-A12-1D; OM10-A12-2A; OM10-A12-2B; OM10-A12-2C; OM10-A12-2D; OM10-A12-3; OM10-A13; OM10-A14; OM10-A14A; OM10-A14b; OM10-A15; OM10-A16; OM10-A17; OM10-A17-1; OM10-A17-2; OM10-A17-3A; OM10-A17-3B; OM10-A17-3C; OM10-A18; OM10-A18-1; OM10-A18-2a; OM10-A18-2B; OM10-A18-2C; OM10-A19; OM10-A20; OM10-A20A; OM10-A20B; OM10-A21; OM10-A22; OM10-A23; OM10-A23B; OM10-A24; OM10-A25; OM10-A25-1A; OM10-A25-1B; OM10-A25-1D; OM10-A25-1E; OM10-A26; OM10-A26-1; OM10-A27; OM10-A28; OM10-A29; OM10-A30; OM10-A31; OM10-A32; OM10-A33; OM10-A34; OM10-A34A; OM10-A35; OM10-A36; OM10-A37; OM11-10; OM11-9; OM11-A21A; OM11-A21B; OM11-A22; OM11-A26; OM11-A27; OM11-A27-1; OM11-A28B; OM11-A29; OM11-A29-1; OM11-A29-2; OM12-024; OM12-025; OM12-026; OM12-027; OM12-028; OM12-029; OM12-030; OM12-031; OM12-032; OM12-033; OM12-034A; OM12-034B; OM12-035; OM12-036; OM12-037; OM12-038; OM12-039; OM12-040; OM12-041; OM12-042; OM12-043; OM12-044; OM12-045; OM12-046; OM12-047; OM12-048; OM12-049; OM12-050; OM12-051; OM12-052; OM12-053; OM12-054; OM12-055; OM12-057; OM12-058; OM12-059; OM12-201; OM12-202; OM12-203; OM12-204; OM12-205; OM12-206; OM12-207; OM12-208; OM12-209; OM12-210; OM12-211; OM12-212A; OM12-212B; OM12-213; OM12-214; OM12-215; OM12-216A; OM12-216B; OM12-217; OM12-218; OM12-219; OM12-220; OM12-Hy0; OM12-Hy018; OM12-Hy023; OM12-Hy025; OM12-Hy030; OM12-Hy032A; OM12-Hy032B; OM12-Hy032C; OM12-Hy032D; OM12-Hy038; OM12-Hy039; OM12-Hy042; OM12-Hy055B; OM12-Hy058.5; OM12-Hy059; OM12-Hy059.5; OM12-Hy062; OM12-Hy068; OM12-Hy077; OM12-Hy080; OM12-Hy080.5; OM12-Hy096; OM12-Hy102; OM12-Hy103; OM12-Hy108; OM12-Hy154; OM12-Hy166; OM15-01; OM15-02; OM15-03A; OM15-03B; OM15-03E; OM15-03F; OM15-04; OM15-05; OM15-06; OM15-07; OM15-08; OM15-09; OM15-10; OM15-11; OM15-13; OM15-14; OM15-15A; OM15-15B; OM15-15C; Om15-15D; OM15-16; OM15-17; OM15-18; OM15-19A; OM15-19B; OM15-19C; OM15-20; OM15-21; OM15-22; OM15-23; OM15-24; OM15-25A; OM15-25B; OM15-26; OM15-27; OM15-28; OM15-29G; OM15-29I; OM15-29J; OM15-30; OM15-31; OM15-32; OM15-33; OM15-34; OM15-35; OM15-36; OM15-37; OM15-40; Oman; Oman Ophiolite; Orthopyroxene, altered; Orthopyroxene, grain size; Orthopyroxene, habit; Orthopyroxene, modal; Orthopyroxene, shape; Oxides, modal; Petrographic Data; Plagioclase, altered; Plagioclase, grain size; Plagioclase, habit; Plagioclase, modal; Plagioclase, shape; Plagioclase, zoning extent; Plagioclase, zoning type; Quartz; Rocks in Hydrothermal Fault Zone; Rock type; Samail Ophiolite; Sampling by hand; Texture; Texture, modified; Unit; Visual description
    Type: Dataset
    Format: text/tab-separated-values, 5809 data points
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  • 5
    Publication Date: 2023-02-22
    Keywords: According to Gillis et al. (2014); Aluminium oxide; Aluminium oxide, standard deviation; Anorthite content in plagioclase; Anorthite content in plagioclase, standard deviation; Calcium oxide; Calcium oxide, standard deviation; Chromium(III) oxide; Chromium(III) oxide, standard deviation; Comment; Depth above Mohorovicic discontinuity; Electronprobe Microanalysis; Electron Probe Microanalysis (EPMA); Event label; Fast-spreading oceanic crust; gabbro; HAND; Iron oxide, FeO; Iron oxide, FeO, standard deviation; Magnesium oxide; Magnesium oxide, standard deviation; Magnesium oxide/(Magnesium oxide/Iron oxide, FeO, total) molar ratio; Magnesium oxide/(Magnesium oxide/Iron oxide, FeO, total) molar ratio, standard deviation; Main Lithology; Manganese oxide; Manganese oxide, standard deviation; Mineral Analyses; Nickel oxide; Nickel oxide, standard deviation; Number of analyses; OM10-A11-1a; OM10-A11-1c; OM10-A11-1n; OM10-A11-1o; OM10-A11-1p; OM10-A11-1q; OM10-A11-1v; OM10-A11-1w; OM10-A11-1x; OM10-A12-1D; OM10-A13; OM10-A14; OM10-A14A; OM10-A14b; OM10-A15; OM10-A16; OM10-A17; OM10-A17-1; OM10-A17-2; OM10-A18; OM10-A18-1; OM10-A18-2a; OM10-A19; OM10-A20; OM10-A20A; OM10-A20B; OM10-A21; OM10-A22; OM10-A23; OM10-A23B; OM10-A24; OM10-A25; OM10-A26; OM10-A27; OM10-A28; OM10-A29; OM10-A30; OM10-A31; OM10-A32; OM11-A21A; OM11-A21B; OM11-A22; OM11-A26; OM11-A27; OM11-A27-1; OM11-A28B; OM11-A29; OM11-A29-1; OM11-A29-2; OM12-025; OM12-026; OM12-027; OM12-028; OM12-029; OM12-030; OM12-031; OM12-032; OM12-033; OM12-034A; OM12-034B; OM12-035; OM12-036; OM12-037; OM12-038; OM12-039; OM12-040; OM12-041; OM12-042-1; OM12-042-2; OM12-043; OM12-044; OM12-045; OM12-046; OM12-047; OM12-048; OM12-049; OM12-050; OM12-051; OM12-052; OM12-053; OM12-054; OM12-055; OM12-057; OM12-058; OM12-059; OM12-201; OM12-202; OM12-203; OM12-204; OM12-205; OM12-206; OM12-207; OM12-208; OM12-209; OM12-210; OM12-211; OM12-213; OM12-214; OM12-217; OM12-218; OM12-219; OM12-Hy0; OM12-Hy018; OM12-Hy023; OM12-Hy025; OM12-Hy030; OM12-Hy032B; OM12-Hy038; OM12-Hy039-1; OM12-Hy039-2; OM12-Hy042; OM12-Hy055B; OM12-Hy059; OM12-Hy059.5; OM12-Hy062; OM12-Hy068; OM12-Hy077; OM12-Hy080.5; OM12-Hy102-1; OM12-Hy102-2; OM12-Hy108; OM12-Hy154-1; OM12-Hy154-2; OM12-Hy166; OM15-01; OM15-02; OM15-10; OM15-13; OM15-15C; Om15-15D; OM15-18; OM15-19A; OM15-21; OM15-24; OM15-26; OM15-27; OM15-30; OM15-32; OM15-33; OM15-40; Oman; Oman Ophiolite; Petrographic Data; Phase; Potassium oxide; Potassium oxide, standard deviation; Reference/source; Rocks in Hydrothermal Fault Zone; Rock type; Samail Ophiolite; Sample comment; Sampling by hand; Silicon dioxide; Silicon dioxide, standard deviation; Sodium oxide; Sodium oxide, standard deviation; Textural features; Texture; Titanium dioxide; Titanium dioxide, standard deviation; Total; Unit
    Type: Dataset
    Format: text/tab-separated-values, 18271 data points
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  • 6
    Publication Date: 2023-05-12
    Keywords: Aluminium oxide; Aluminium oxide, standard deviation; Anorthite; Apostr_Is; Area/locality; Calcium oxide; Calcium oxide, standard deviation; Chlorine; Chlorine, standard deviation; Chromium(III) oxide; Chromium(III) oxide, standard deviation; Electron microprobe (EMP); Elements, total; Event label; Fluorine; Fluorine, standard deviation; HAND; Iron oxide, FeO; Iron oxide, FeO, standard deviation; Magnesium number; Magnesium oxide; Magnesium oxide, standard deviation; Manganese oxide; Manganese oxide, standard deviation; Phase; Potassium oxide; Potassium oxide, standard deviation; Rock type; Sample amount; Sample ID; Sampling by hand; Silicon dioxide; Silicon dioxide, standard deviation; Sodium oxide; Sodium oxide, standard deviation; Spatul_Ridge; Titanium dioxide; Titanium dioxide, standard deviation; Victoria Land, Antarctica
    Type: Dataset
    Format: text/tab-separated-values, 2018 data points
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  • 7
    Publication Date: 2023-05-12
    Keywords: Apostr_Is; Area/locality; Event label; HAND; Neodymium; Neodymium-143/Neodymium-144 ratio; Rock type; Rubidium; Rubidium-87/Strontium-86 ratio; Samarium; Samarium-147/Neodymium-143 ratio; Sample ID; Sampling by hand; Spatul_Ridge; Strontium; Strontium-87/Strontium-86 ratio; Thermal Ionization Mass Spectrometry (TIMS); Victoria Land, Antarctica; ε-Neodymium (0); ε-Neodymium (T)
    Type: Dataset
    Format: text/tab-separated-values, 228 data points
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  • 8
    Publication Date: 2023-07-10
    Description: As largest and best-exposed paleo-fast-spread oceanic crust on land, the Samail ophiolite in the Sultanate of Oman represents an ideal natural laboratory for investigating processes at fast-spreading mid-ocean ridges. We studied two layered gabbro sequences from different stratigraphic depths: one from the middle of the plutonic crust showing dm-scale modal layering with olivine abundance gradually decreasing from layer base to top (Wadi Somerah, Sumail block) and one located near the crust-mantle boundary showing mm-scale layers being enriched in olivine (Wadi Wariyah, Wadi Tayin block). Petrological analyses for major and minor element compositions of the phases olivine, clinopyroxene and plagioclase were performed at the Institut für Mineralogie (Leibniz Universität Hannover, Germany) using a Cameca SX100 microprobe. Core and rim analyses on olivine, clinopyroxene and plagioclase were done using a beam current of 15 nA with 15 kV accelerating voltage and 10 seconds measurement time on the peak and 5 seconds on each background. On clinopyroxene, the beam was defocused to 20 µm, olivine and plagioclase analyses were performed with a beam defocused to 2 µm. Calcium in olivine and Mg in plagioclase profiles for the estimation of closure temperatures and cooling rates were performed with a focused beam with an accelerating voltage of 15 kV, a beam current of 100 nA, and 240 seconds peak time and 120 seconds on each background. Electron backscattered diffraction (EBSD) was performed at Géosciences Montpellier (Université de Montpellier, France) using a Jeol JSM 5600 SEM equipped with an Oxford/Nordlys EBSD detector. The accelerating voltage was 15 kV, the scanning step size varied from 16.5 to 30 µm depending on the grain size of the sample. Major element measurements reveal mineral compositions being more primitive in Wadi Wariyah than in Wadi Somerah. Compositions vary along the profiles representing no systematic trend, neither along the entire profiles nor within single layers. Weak zonation is observed in the Mg# and the TiO2 content of clinopyroxene in Wadi Somerah. The modeled cooling rates vary from 1.2 to 21°C per thousand years in Wadi Somerah and 3 to 130°C per thousand years in Wadi Wariyah. The closure temperatures of olivine cores vary from 910 to 965°C in Wadi Somerah and from 1074 to 1106°C in Wadi Wariyah. The closure temperatures of plagioclase rims vary from 850 to 930°C. The fabric strength is generally low in Wadi Somerah and slightly increased in Wadi Wariyah. BA and BC indices give a stronger lineation in Wadi Wariyah and the grain orientation spread is also higher for the samples from Wadi Wariyah.
    Keywords: Acantholeberis curvirostris; Aluminium oxide; Aluminium oxide, standard deviation; Analysis; Biogenic silica; Biogenic silica, standard deviation; Calcium number; Calcium number, standard deviation; Calcium oxide; Calcium oxide, standard deviation; CAMECA SX100 Electron Probe MicroAnalizer; Chromium(III) oxide; Chromium(III) oxide, standard deviation; Closure temperature; Comment; Cooling rate; DEPTH, sediment/rock; Drilling/coring; Elements, total; Elevation of event; Event label; Event layer type; Fabric strength; Formation of Layered Gabbros; Grain orientation spread; Grains, counted/analyzed; Iron oxide, FeO; Iron oxide, FeO, standard deviation; Latitude of event; Layer number; Longitude of event; Lower Oceanic Crust; Magnesium number; Magnesium number, standard deviation; Magnesium oxide; Magnesium oxide, standard deviation; Main Lithology; Manganese oxide; Manganese oxide, standard deviation; Minerals; Nickel oxide; Nickel oxide, standard deviation; OM10-Sam; OM10-War; Oman; Oman Ophiolite; Potassium oxide; Potassium oxide, standard deviation; Sample code/label; Sodium oxide; Sodium oxide, standard deviation; Symmetry index; Titanium dioxide; Titanium dioxide, standard deviation; Wadi Somerah, Sumail block; Wadi Wariyah, Wadi Tayin block
    Type: Dataset
    Format: text/tab-separated-values, 7214 data points
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  • 9
    Publication Date: 2023-07-10
    Keywords: Aluminium oxide; Antimony; Apostr_Is; Area/locality; Arsenic; Barium; Caesium; Calcium oxide; Cerium; Chromium; Cobalt; Copper; Dysprosium; Elements, total; Erbium; Europium; Event label; Gadolinium; Gallium; Hafnium; HAND; Holmium; Inductively coupled plasma - mass spectrometry (ICP-MS); Iron oxide, Fe2O3; Lanthanum; Lead; Lithium; Loss on ignition; Lutetium; Magnesium number; Magnesium oxide; Manganese; Manganese oxide; Molybdenum; Neodymium; Nickel; Niobium; Phosphorus pentoxide; Potassium oxide; Praseodymium; Rock type; Rubidium; Samarium; Sample ID; Sampling by hand; Scandium; Selenium; Silicon dioxide; Sodium oxide; Spatul_Ridge; Strontium; Tantalum; Terbium; Thorium; Thulium; Tin; Titanium dioxide; Tungsten; Uranium; Vanadium; Victoria Land, Antarctica; X-ray fluorescence (XRF); Ytterbium; Yttrium; Zinc; Zirconium
    Type: Dataset
    Format: text/tab-separated-values, 1450 data points
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  • 10
    Publication Date: 2023-07-10
    Keywords: Apostr_Is; Area/locality; Barium; Cerium; Chromium; Dysprosium; Erbium; Europium; Event label; Gadolinium; Hafnium; HAND; Holmium; Identification; LA-ICP-MS, Laser-ablation inductively coupled plasma mass spectrometer; Lanthanum; Lead; Lutetium; Neodymium; Nickel; Niobium; Praseodymium; Rubidium; Samarium; Sample ID; Sampling by hand; Scandium; Spatul_Ridge; Strontium; Tantalum; Terbium; Thorium; Thulium; Titanium; Uranium; Vanadium; Victoria Land, Antarctica; Ytterbium; Yttrium; Zirconium
    Type: Dataset
    Format: text/tab-separated-values, 990 data points
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