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NARROW
GeoRef Subject
-
all geography including DSDP/ODP Sites and Legs
-
Africa
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Central Africa
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Congo Democratic Republic
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Kivu Congo Democratic Republic (1)
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East Africa
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Tanzania
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Oldoinyo Lengai (1)
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East African Rift (1)
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Southern Africa
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Botswana (1)
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South Africa
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Transvaal region (2)
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West Africa
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Asia
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Far East
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Atlantic Ocean
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Canada
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Quebec
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Europe
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stable isotopes
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D/H (2)
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Nd-144/Nd-143 (4)
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Precambrian
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upper Precambrian
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sheet silicates
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Primary terms
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absolute age (21)
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Africa
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Congo Democratic Republic
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-
-
East Africa
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Tanzania
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Oldoinyo Lengai (1)
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East African Rift (1)
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Southern Africa
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Botswana (1)
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South Africa
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Bushveld Complex (1)
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Transvaal region (2)
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West Africa
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Antarctica
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Transantarctic Mountains (1)
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Asia
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Far East
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China
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Krasnoyarsk Russian Federation
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Atlantic Ocean
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Caribbean Sea
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Atlantic Ocean Islands
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Papua New Guinea (1)
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Canada
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Lake Timiskaming (1)
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Quebec
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Abitibi County Quebec
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Horne Mine (1)
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Monteregian Hills (1)
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Nunavut (1)
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Great Slave Lake (1)
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Yukon Territory (1)
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carbon (1)
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Caribbean region
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West Indies
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Hispaniola (1)
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-
-
-
-
Cenozoic
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Quaternary
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Pleistocene (1)
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Tertiary
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Neogene
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Miocene
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lower Miocene (1)
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-
Paleogene
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Oligocene (5)
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Central America
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continental shelf (1)
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Earth (1)
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Murmansk Russian Federation
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Southern Europe
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orthopyroxenite (1)
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porphyry (8)
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andesites (5)
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alkali basalts (1)
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flood basalts (1)
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basanite (1)
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hypabyssal rocks
Contrasting constraints on the temporal and spatial extents of normal faults from the Hilltop and Lewis mining districts, northern Shoshone Range, Nevada, USA
Petrogenesis of the Limerick Igneous Suite: insights into the causes of post-eruptive alteration and the magmatic sources underlying the Iapetus Suture in SW Ireland
ABSTRACT Two spatially separated areas of Neogene volcanic rocks are located on the northeast limb of the Mount Diablo anticline. The southernmost outcrops of volcanics are 6 km east of the summit of Mount Diablo in the Marsh Creek area and consist of ~12 hypabyssal dacite intrusions dated at ca. 7.8–7.5 Ma, which were intruded into the Great Valley Group of Late Cretaceous age. The intrusions occur in the vicinity of the Clayton and Diablo faults. The rocks are predominantly calc-alkaline plagioclase biotite dacites, but one is a tholeiitic plagioclase andesite. Mercury mineralization was likely concomitant with emplacement of these late Miocene intrusions. The northernmost outcrops of Neogene volcanic rocks occur ~15 km to the north of Mount Diablo in the Concord Naval Weapons Station and the Los Medanos Hills and are probably parts of a single andesite flow. A magnetometer survey indicates that the flow originated from a feeder dike along the Clayton fault. The lava flow is flat-lying and occupies ancient stream channels across an erosional surface of tilted Markley Sandstone of middle Eocene age. New radiometric dates of the flow yield an age of 5.8–5.5 Ma, but due to alteration the age should be used with caution. The flow is a calc-alkaline andesite rich in clinopyroxene and plagioclase. What appear to be uplifted erosional remnants of the flow can be traced northeastward in the Los Medanos Hills across a surface of tilted Cenozoic rocks that eventually rest on formations as young as the Lawlor Tuff dated at 4.865 ± 0.011 Ma. This stratigraphic relationship suggests that the andesite flow is probably late Pliocene in age and was impacted by the more recent uplift of the Los Medanos Hills but postdates the regional folding and faulting of the rocks of Mount Diablo. In terms of timing, location, and composition, the evidence suggests these two areas of dacitic and andesitic volcanics fit into a series of migrating volcanic centers in the California Coast Ranges that erupted following the northward passage of the Mendocino Triple Junction.
Petrogenesis and tectonic implication of the lower Silurian high-Sr/Y subvolcanic rocks from the South Qilian suture zone in the Qilian Orogen, NW China
Challenging Issues of the Earth’s History and the Central Asian and Circum-Pacific Tectonics, Geodynamics, and Metallogeny (on the 85th Birthday of Academician Nikolai L. Dobretsov)
Reconstructing the Physical and Chemical Development of a Pluton-Porphyry Complex in a Tectonically Reorganized Arc Crustal Section, Tioga Pass, Sierra Nevada
Eocene arc petrogenesis in Central Chile ( c. 33.6° S) and implications for the Late Cretaceous–Miocene Andean setting: tracking the evolving tectonic regime
Kimberlites as Geochemical Probes of Earth’s Mantle
What is a Kimberlite? Petrology and Mineralogy of Hypabyssal Kimberlites
Diamond Exploration and Resource Evaluation of Kimberlites
Kimberlites: From Deep Earth to Diamond Mines
Genesis of Felsic Plutonic Magmas and Their Igneous Enclaves: The Cobaw Batholith of Southeastern Australia
The Early to early Late Jurassic magmatic arc of the lower Colorado River region of southern California and southwest Arizona spanned ∼30 m.y., from ca. 190 to 158 Ma. The arc-type volcanic and plutonic rocks interacted extensively with the Proterozoic Mojave Province crust and show evidence for geographic-based age and compositional changes. The region lies adjacent to an amagmatic gap in the Jurassic arc of the southwest United States, near the western terminus of proposed Late Jurassic basins formed in conjunction with the opening of the Gulf of Mexico, and near, but to the north of, the projection of the trace of the sinistral Late Jurassic Mojave-Sonora megashear where it crossed from northern Mexico into the United States. Quartz-phyric dacitic to rhyolitic pyroclastic and locally hypabyssal rocks of the Dome Rock sequence were emplaced in two broad time periods, one between 190 and 185 Ma and the second between 173 and 158 Ma. Three compositionally expanded pluton units constituting the Kitt Peak–Trigo Peaks superunit were emplaced in the mid- to upper crust between 173 and 158 Ma, broadly contemporaneous with the younger phase of explosive volcanism. The compositionally expanded plutonic rocks consist of three informally named temporally and compositionally distinct magmatic units, from oldest to youngest, the Araz Wash diorite, the Middle Camp porphyritic granodiorite, and the Gold Rock Ranch granite. Each unit was emplaced over 4–6 m.y. periods of time. Dioritic rocks dominate the older Araz Wash diorite unit (173–169 Ma), granodiorite dominates the Middle Camp porphyritic granodiorite unit (167–163 Ma), and granite dominates the Gold Rock Ranch granite unit (163–158 Ma). Shortening and regional metamorphism throughout the lower Colorado River region accompanied emplacement of the Gold Rock Ranch granite unit. A Late Jurassic(?) mafic-felsic dike swarm forms the youngest magmatic unit in the region. The Jurassic magmatic history in the lower Colorado River region ended in the early Late Jurassic at ca. 158 Ma. Termination of magmatism in the Late Jurassic in the lower Colorado River region is distinct from adjacent parts of the arc to northwest in the Mojave Desert region or to the southeast in southern Arizona, where Late Jurassic magmatism continued to at least 146 Ma. At this time in the Late Jurassic, the Mojave-Sonora megashear had cut through the arc to the south of the lower Colorado River region, where degradation of the arc is recorded in sedimentary rocks now composing the lower parts of the McCoy Mountains Formation, the Winter-haven Formation, and informally named rocks of Slumgullion.
Tertiary volcanism in the Italian Alps (Giudicarie fault zone, NE Italy): insight for double alpine magmatic arc
Key factors controlling massive graphite deposition in volcanic settings: an example of a self-organized critical system
Geology of the Snap Lake kimberlite intrusion, Northwest Territories, Canada: field observations and their interpretation
Magmatic anhydrite-sulfide assemblages in the plumbing system of the Siberian Traps
The Churchill kimberlite field, Nunavut, Canada: petrography, mineral chemistry, and geochronology
Mesa Central is an elevated plateau that can be divided into two regions. In the southern region, the topography is higher than 2000 masl, except for the Aguascalientes valley. This region is mostly covered by Cenozoic volcanic rocks. The northern region shows an advanced degree of erosion, and is below 2000 masl. The crust in Mesa Central is ∼32 km thick, and it is bordered by the Sierra Madre Oriental, which has an average crustal thickness of ∼37 km, and the Sierra Madre Occidental, which has an average crustal thickness of ∼40 km. The presence of magmas below the crust is inferred, suggesting an underplating process. The oldest rocks are Triassic marine facies underlain by Jurassic continental rocks. Marine environment prevailed between the Oxfordian and the Cretaceous, forming three distinctive lithological sequences, from E to W: the Valles–San Luis Potosí Platform, the Mesozoic Basin of Central México, and marine volcanosedimentary Mesozoic rocks. All of the above rocks have plicative deformation and inverse faulting, which was produced during the Laramide orogeny. An angular unconformity separates these lithological sequences from the continental Cenozoic rocks. The bottom of the Cenozoic sequence consists of conglomerate with andesitic and rhyolitic volcanic rocks. These were followed by Oligocene topaz-bearing rhyolites, and the uppermost part of the Cenozoic sequence is Miocene-Quaternary alkaline basalt. The boundaries of Mesa Central are the Sector Transversal de Parras and major fault systems active during the Cenozoic to the E, W, and S. A major structure, the San Luis–Tepehuanes fault system, separates the northern and southern regions of Mesa Central. The majority of the mineral deposits found in Mesa Central or in its vicinities, especially epithermal deposits, is located on the traces of the major fault systems described above. The data available suggest that the structures associated with the major fault systems controlled the emplacement of both volcanic-hypabyssal rocks and mineral deposits.