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  • 1
    Keywords: Geology. ; Mineralogy. ; Paleontology . ; Geology. ; Mineralogy. ; Paleontology.
    Description / Table of Contents: Turin Papyrus Map and Historical Background -- The Egyptian Nubian Shield within the frame of the Arabian-Nubian Shield -- Rock succession of the Egyptian Nubian Shield -- The Sinai Metamorphic Core Complexes and implications on Break-up of Rodinia -- The Infracrustal rocks in Egypt -- The Ophiolite-dominated Suprastructure -- Volcanosedimentary succession in Egypt -- The Neoproterozoic volcanism and volcanic rocks in Egypt -- Granites and Granites in Egypt: A Matter of Controversy -- Dokhan Volcanics in Egypt -- The Hammamat Molasse Sediments -- On the cryptology of the lithosphere mantle beneath Northeast Africa continent: A perspective view -- The mantle section of Neoproterozoic ophiolites from the Pan-African belt: an implication for the tectonomagmatic evolution of the Egyptian Nubian Shield -- Suture(s) and major shear zones in the Egyptian Nubian Shield -- Neoproterozoic tectonometamorphic evolution -- Petrogenetic evolution of the Neoproterozoic rock of Egypt -- Metallic Mineral Deposits in the Neoproterozoic Egyptian Nubian Shield: an overview -- Active Plate Margins associated Base- and Precious-Metal Deposits -- Convergent-margin Polymetallic Volcanic Massive Sulphide Deposits -- Convergent-margin Polymetallic Epithermal Deposits (Zn-Cu-Au-Ag) -- Banded Iron Formation -- Ophiolite-associated Cu, Ni and Cr Deposits -- Gold in Egypt -- Sn-W-Ta-Mo-U-REE Mineralizations associated with Alkali Granite Magmatism -- Non-Metallic Mineral Deposits in the Egyptian Nubian Shield (including Beryl, peridot, fluorite, talc, magnesite and barite ore deposits) -- Application of remote sensing in detecting mineralized zones -- Application of magnetic susceptibility and its anisotropy in deciphering the tectonic evolution of the Pan-African belt of Egypt -- Geophysical data for mapping structural features and hydrothermal alteration zones. .
    Abstract: This richly illustrated book provides an overview of the Neoproterozoic Pan-African Belt of Egypt (PABE), which represents the northwestern continuation of the Arabian-Nubian Shield (ANS) and the East African Orogen (EAO). The first chapter offers an introduction to the Turin Papyrus Map and the historical background of the PABE, while the second addresses how the PABE is related to the ANS and EAO. Rock succession of the PABE is dealt with in Chapter 3, while Chapter 4 focuses on Sinai Metamorphic Core Complexes and implications on the break-up of Rodinia. Subsequent chapters discuss a broad range of topics, e.g. ophiolite-dominated suprastructural rocks; volcanosedimentary succession, Neoproterozoic volcanism and volcanic rocks in Egypt; enigmatic issues concerning granite, Dokhan and Hammamat sediments; the lithospheric mantle beneath the Northeast African continent and the mantle section of Neoproterozoic ophiolites from the PABE; sutures, megashears and petrogenetic evolution of the Neoproterozoic rocks of Egypt; and metallic and non-metallic mineral deposits in the PABE, which are covered in extensive detail. The book’s closing chapters discuss the application of remote sensing techniques and anisotropy of magnetic susceptibility (AMS) to decipher the tectonic evolution of the PABE, as well as the use of geophysical data to map structural features and hydrothermal alteration zones in the PABE. .
    Type of Medium: Online Resource
    Pages: XXIV, 700 p. 396 illus., 354 illus. in color. , online resource.
    Edition: 1st ed. 2021.
    ISBN: 9783030497712
    Series Statement: Regional Geology Reviews,
    DDC: 551
    Language: English
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  • 2
    Publication Date: 2022-05-25
    Description: Author Posting. © Elsevier B.V., 2006. This is the author's version of the work. It is posted here by permission of Elsevier B.V. for personal use, not for redistribution. The definitive version was published in Earth and Planetary Science Letters 245 (2006): 777-791, doi:10.1016/j.epsl.2006.03.021.
    Description: In-situ 187Os/188Os ratios are determined on Os-rich platinum-group minerals in podiform chromitites both in the Proterozoic ophiolite, Eastern Desert, Egypt, and in the Phanerozoic Oman ophiolite. Because they have very low Re/Os, these primary minerals reflect the initial 187Os/188Os ratios of their parental magmas. The platinum-group minerals (PGM) in the central Eastern Desert chromitites exhibit sub-chondritic to chondritic 187Os/188Os ratios, 0.1226 on average, which is lower than the primitive upper mantle evolution trend of a comparable age. Those of the southern Eastern Desert chromitites have more radiogenic Os, with supra-chondritic 187Os/188Os ratio of about 0.1293 on average, which could be due to crustal contamination. The three chromitite types in the northern part of the Oman ophiolite are almost indistinguishable in terms of their 187Os/188Os ratios; they have overlapping values ranging from sub-chondritic to supra-chondritic ratios. The PGE-rich, mantle chromitite samples have a wide range of 187Os/188Os ratio from 0.1230 up to 0.1376, with an average of 0.1299. The values of the PGE-poor mantle chromitites overlap in their 187Os/188Os ratios with PGE-rich chromites, but are less variable and have a significantly higher average ratio. The Moho transition zone (MTZ) chromitites are highly variable in the 187Os/188Os ratio, ranging from 0.1208 up to 0.1459. The wide range of 187Os/188Os ratios, from 0.1192 to 0.1459, in platinum-group minerals in Egyptian and Oman ophiolites can be attributed to the diversity of origin of their podiform chromitites. The Os-isotope data combined with spinel chemistry indicate that the way involved in podiform chromitite formation was not substantially different between the Proterozoic ophiolite of Egypt and the Phanerozoic ophiolite in northern Oman. The Os-isotope compositions of the mantle chromitites in the Proterozoic ophiolite of Egypt clearly suggest crustal contamination. The heterogeneity of 187Os/188Os ratios combined with the spinel chemistry and high PGE contents of the PGE-rich chromitite in the Oman ophiolite may give reliable evidence for high degree partial melting at a supra-subduction zone setting. Crustal contamination from the subducted slab, and assimilation of previously altered, lower crustal gabbro, may have contributed to the high Cr# spinel and radiogenic Os characteristics in chromitite formed in the mantle section and along the Moho transition zone, respectively.
    Description: Kelemen and Hanghøj were supported in this project by US National Science Foundation grants OCE-9819666 and OCE-0118572.
    Keywords: Chromitite ; Egypt ; Oman ; Ophiolites ; Os-isotope ; In-situ PGM analyses
    Repository Name: Woods Hole Open Access Server
    Type: Preprint
    Format: 182165 bytes
    Format: application/pdf
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  • 3
    Publication Date: 2023-06-27
    Keywords: 66-487; Aluminium oxide; Calcium; Calcium oxide; Deep Sea Drilling Project; Description; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Glomar Challenger; Iron oxide, FeO; Leg66; Magnesium oxide; Manganese oxide; North Pacific/TRENCH; Potassium; Potassium oxide; Sample code/label; Sample ID; Silicon dioxide; Sodium; Sodium oxide; Titanium dioxide; Total
    Type: Dataset
    Format: text/tab-separated-values, 112 data points
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  • 4
    Publication Date: 2023-06-27
    Keywords: 66-487; Albite; Aluminium oxide; Anorthite; Apatite; Calcium oxide; Chromite; Chromium(III) oxide; CIPW Norm; Deep Sea Drilling Project; Diopside; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Glomar Challenger; Hypersthene; Ilmenite; Iron oxide, Fe2O3; Iron oxide, FeO; Leg66; Magnesium oxide; Magnetite; Manganese oxide; North Pacific/TRENCH; Olivine; Orthoclase; Phosphorus pentoxide; Potassium oxide; Sample code/label; Sample ID; Silicon dioxide; Sodium oxide; Titanium dioxide; Total; Water in rock
    Type: Dataset
    Format: text/tab-separated-values, 54 data points
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  • 5
    Publication Date: 2023-06-27
    Keywords: 66-487; Aluminium oxide; Calcium; Calcium oxide; Chromium(III) oxide; CIPW Norm; Deep Sea Drilling Project; Description; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Forsterite; Glomar Challenger; Iron; Iron oxide, FeO; Leg66; Magnesium; Magnesium oxide; Manganese oxide; Nickel oxide; North Pacific/TRENCH; Sample code/label; Sample ID; Silicon dioxide; Sodium oxide; Titanium dioxide; Total
    Type: Dataset
    Format: text/tab-separated-values, 142 data points
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  • 6
    Publication Date: 2023-06-27
    Keywords: 66-487; Aluminium; Aluminium oxide; Calcium oxide; Chromium; Chromium(III) oxide; Chromium number; CIPW Norm; Deep Sea Drilling Project; Description; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Glomar Challenger; Iron 3+; Iron oxide, FeO; Leg66; Magnesium number; Magnesium oxide; Magnetite; Manganese oxide; North Pacific/TRENCH; Sample code/label; Sample ID; Silicon dioxide; Sodium oxide; Spinel; Titanium dioxide; Total; Ulvöspinel
    Type: Dataset
    Format: text/tab-separated-values, 118 data points
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  • 7
    Publication Date: 2023-06-27
    Keywords: 66-487; Aluminium; Aluminium oxide; Calcium; Calcium oxide; Calculated based on oxygen number; Chromium; Chromium(III) oxide; Deep Sea Drilling Project; Description; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Glomar Challenger; Iron; Iron 2+ and 3+; Iron oxide, FeO; Leg66; Magnesium; Magnesium number; Magnesium oxide; Manganese; Manganese oxide; North Pacific/TRENCH; Sample code/label; Sample ID; Silicon; Silicon dioxide; Sodium; Sodium oxide; Titanium; Titanium dioxide; Total
    Type: Dataset
    Format: text/tab-separated-values, 208 data points
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  • 8
    Publication Date: 2023-06-27
    Keywords: 66-487; Albite; Aluminium oxide; Anorthite; Calcite; Calcium oxide; Chromium(III) oxide; CIPW Norm; Deep Sea Drilling Project; Description; Diopside; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Glomar Challenger; Hypersthene; Ilmenite; Iron oxide, FeO; Leg66; Magnesium number; Magnesium oxide; Manganese oxide; Nickel oxide; North Pacific/TRENCH; Olivine; Orthoclase; Potassium oxide; Quartz; Sample code/label; Sample ID; Silicon dioxide; Sodium oxide; Titanium dioxide; Total
    Type: Dataset
    Format: text/tab-separated-values, 219 data points
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  • 9
    Publication Date: 2023-06-27
    Keywords: 66-487; Aluminium; Aluminium oxide; Calcium; Calcium oxide; Calculated based on oxygen number; Chromium(III) oxide; Deep Sea Drilling Project; Description; DRILL; Drilling/drill rig; DSDP; DSDP/ODP/IODP sample designation; Electron microprobe (EMP); Glomar Challenger; Iron 2+ and 3+; Iron oxide, FeO; Leg66; Magnesium; Magnesium number; Magnesium oxide; Manganese; Manganese oxide; North Pacific/TRENCH; Potassium; Potassium oxide; Sample code/label; Sample ID; Silicon; Silicon dioxide; Sodium; Sodium oxide; Titanium dioxide; Total
    Type: Dataset
    Format: text/tab-separated-values, 115 data points
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  • 10
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    PANGAEA
    In:  Supplement to: Tamura, Akihiro; Arai, Shoji; Ishimaru, Satoko; Andal, Eric S (2008): Petrology and geochemistry of peridotites from IODP Site U1309 at Atlantis Massif, MAR 30°N: micro- and macro-scale melt penetrations into peridotites. Contributions to Mineralogy and Petrology, 155(4), 491-509, https://doi.org/10.1007/s00410-007-0254-0
    Publication Date: 2023-06-27
    Description: Peridotite samples recovered from IODP Site U1309 at the Atlantis Massif in the Mid-Atlantic Ridge were examined to understand magmatic processes for the oceanic core complex formation. Original peridotite was fragmented, and the limited short peridotite intervals are now surrounded by a huge gabbro body probably formed by late-stage melt injections. Each peridotite interval has various petrographical and geochemical features. A spinel harzburgite in contact with gabbro shows evidence of limited melt penetrations causing gradual compositional change, in terms of trace-element compositions of pyroxenes, as well as modal change near the boundary. Geochemistry of clinopyroxenes with least melt effects indicates that the harzburgite is originally mantle residue formed by partial melting under polybaric conditions, and that such a depleted peridotite is one of the components of the oceanic core complex. Some of plagioclase-bearing peridotites, on the other hand, have more complicated origin. Although their original features were partly overprinted by the injected melt, the original peridotites, both residual and non-residual materials, were possibly derived from the upper mantle. This suggests that the melt injected around an upper mantle region or into mantle material fragments. The injected melt was possibly generated at the ridge-segment center and, then, moved and evolved toward the segment end beneath the oceanic core complex.
    Keywords: 304-U1309B; 304-U1309D; DRILL; Drilling/drill rig; Exp304; Integrated Ocean Drilling Program / International Ocean Discovery Program; IODP; Joides Resolution; Oceanic Core Complex Formation, Atlantis Massive 1
    Type: Dataset
    Format: application/zip, 9 datasets
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