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all geography including DSDP/ODP Sites and Legs
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Africa
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Reptilia
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Invertebrata
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Mesozoic
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lower Liassic (6)
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middle Liassic (7)
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upper Liassic (2)
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Middle Jurassic
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Upper Jurassic
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Triassic
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Upper Triassic (2)
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Paleozoic
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Cambrian
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Upper Cambrian
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Pilgrim Formation (2)
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Carboniferous
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Lodgepole Formation (1)
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Pennsylvanian
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Upper Pennsylvanian
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Devonian
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lower Paleozoic (1)
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Shakopee Formation (2)
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Sauk Sequence (1)
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Niagaran (1)
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Precambrian
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upper Precambrian
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Proterozoic (2)
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igneous rocks
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Primary terms
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absolute age (11)
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Africa
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Southern Africa
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Karoo Basin (1)
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South Africa
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Eastern Cape Province South Africa (1)
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Antarctica (1)
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Arctic region (1)
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Asia
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Far East
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China
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Fujian China (1)
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Guangdong China (1)
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Hunan China (1)
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-
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Tibetan Plateau (1)
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Atlantic Ocean
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North Atlantic
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Caribbean Sea
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Atlantic Ocean Islands
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Shetland Islands (1)
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atmosphere (1)
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Australasia
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bacteria (1)
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biogeography (6)
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Canada
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Newfoundland and Labrador
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Ontario
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Nunavut (1)
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Stikinia Terrane (2)
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Western Canada
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Alberta
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British Columbia
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Canadian Cordillera (1)
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Northwest Territories
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Yukon Territory (2)
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Whitehorse Trough (1)
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carbon
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C-13/C-12 (1)
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C-14 (3)
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organic carbon (1)
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Caribbean region
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West Indies
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Antilles
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Greater Antilles
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Puerto Rico (2)
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Lesser Antilles
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Martinique
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Mount Pelee (4)
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Montserrat Island (1)
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Soufriere (1)
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-
-
-
-
Cenozoic
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Quaternary
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Holocene
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lower Holocene (1)
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upper Holocene (3)
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-
Pleistocene
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Bandelier Tuff (1)
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lower Pleistocene (1)
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upper Pleistocene (1)
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upper Quaternary (3)
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Tertiary
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Neogene
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Miocene
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Grande Ronde Basalt (1)
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upper Miocene (1)
-
-
Pliocene (1)
-
-
Paleogene
-
Eocene (1)
-
Oligocene (2)
-
-
-
-
Chordata
-
Vertebrata
-
Pisces
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Osteichthyes
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Actinopterygii (1)
-
-
-
Tetrapoda
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Aves
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Neornithes
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Neognathae
-
Charadriiformes (1)
-
-
-
-
Reptilia
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Diapsida
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Archosauria
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diagenesis (2)
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diamond deposits (1)
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trachybasalts (1)
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flood basalts (1)
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glasses
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obsidian (1)
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pyroclastics
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ash-flow tuff (4)
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ignimbrite (2)
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intrusions (3)
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Invertebrata
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Mollusca
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Bivalvia
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Ostreoidea
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Gryphaea (1)
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Pterioida
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Pectinacea (1)
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Cephalopoda
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Ammonoidea
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Ammonites (1)
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Psiloceratida (1)
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Protista
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Foraminifera (2)
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Radiolaria (1)
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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
Climato-tectonic evolution of siliciclastic sandstones on Puerto Rico: from lithic arenites to quartz-arenitic sands in an oceanic island-arc setting Available to Purchase
Diavik Waste-Rock Project, Northwest Territories, Canada: Predicting Field-Scale Waste-Rock Drainage Quality from Humidity-Cell Experiments Available to Purchase
A power-based abrasion law for use in landscape evolution models Available to Purchase
Landscape and Seascape Responses to Canada’s Changing Climate Available to Purchase
Late Pleistocene and early Holocene sea-level history and glacial retreat interpreted from shell-bearing marine deposits of southeastern Alaska, USA Open Access
Providencia Island: A Miocene Stratovolcano on the Lower Nicaraguan Rise, Western Caribbean—A Geological Enigma Resolved Available to Purchase
ABSTRACT The Providencia island group comprises an extinct Miocene stratovolcano located on a shallow submarine bank astride the Lower Nicaraguan Rise in the western Caribbean. We report here on the geology, geochemistry, petrology, and isotopic ages of the rocks within the Providencia island group, using newly collected as well as previously published results to unravel the complex history of Providencia. The volcano is made up of eight stratigraphic units, including three major units: (1) the Mafic unit, (2) the Breccia unit, (3) the Felsic unit, and five minor units: (4) the Trachyandesite unit, (5) the Conglomerate unit, (6) the Pumice unit, (7) the Intrusive unit, and (8) the Limestone unit. The Mafic unit is the oldest and forms the foundation of the island, consisting of both subaerial and subaqueous lava flows and pyroclastic deposits of alkali basalt and trachybasalt. Overlying the Mafic unit, there is a thin, minor unit of trachyandesite lava flows (Trachyandesite unit). The Breccia unit unconformably overlies the older rocks and consists of crudely stratified breccias (block flows/block-and-ash flows) of vitrophyric dacite, which represent subaerial near-vent facies formed by gravitational and/or explosive dome collapse. The breccias commonly contain clasts of alkali basalt, indicating the nature of the underlying substrate. The Felsic unit comprises the central part of the island, composed of rhyolite lava flows and domes, separated from the rocks of the Breccia unit by a flat-lying unconformity. Following a quiescent period, limited felsic pyroclastic activity produced minor valley-fill ignimbrites (Pumice unit). The rocks of Providencia can be geochemically and stratigraphically subdivided into an older alkaline suite of alkali basalts, trachybasalts, and trachyandesites, and a younger subalkaline suite composed dominantly of dacites and rhyolites. Isotopically, the alkali basalts together with the proposed tholeiitic parent magmas for the dacites and rhyolites indicate an origin by varying degrees of partial melting of a metasomatized ocean-island basalt–type mantle that had been modified by interaction with the Galapagos plume. The dacites are the only phenocryst-rich rocks on the island and have a very small compositional range. We infer that they formed by the mixing of basalt and rhyolite magmas in a lower oceanic crustal “hot zone.” The rhyolites of the Felsic unit, as well as the rhyolitic magmas contributing to dacite formation, are interpreted as being the products of partial melting of the thickened lower oceanic crust beneath Providencia. U-Pb dating of zircons in the Providencia volcanic rocks has yielded Oligocene and Miocene ages, corresponding to the ages of the volcanism. In addition, some zircon crystals in the same rocks have yielded both Proterozoic and Paleozoic ages ranging between 1661 and 454 Ma. The lack of any evidence of continental crust beneath Providencia suggests that these old zircons are xenocrysts from the upper mantle beneath the Lower Nicaraguan Rise. A comparison of the volcanic rocks from Providencia with similar rocks that comprise the Western Caribbean alkaline province indicates that while the Providencia alkaline suite is similar to other alkaline suites previously defined within this province, the Providencia subalkaline suite is unique, having no equivalent rocks within the Western Caribbean alkaline province.
Front Matter Free
Providencia is the only example of subaerial volcanism on the Lower Nicaraguan Rise. In this volume, the authors examine this volcanism and the geological history of the western Caribbean and the Lower Nicaraguan Rise, whose origin and role in the development of the Caribbean plate has been described as enigmatic and poorly understood. While the Providencia alkaline suite is similar to others within the Western Caribbean Alkaline Province, its subalkaline suite is unique, having no equivalent within the province. In order to unravel its complex history and evolution, this volume presents new and previously published results for the geology, geochemistry, petrology, and isotopic ages from the Providencia island group.
Reservoir characterization and static earth model for potential carbon dioxide storage in Upper Pennsylvanian cyclothems, Nebraska, United States Available to Purchase
Orbital precession modulates interannual rainfall variability, as recorded in an Early Pleistocene speleothem Available to Purchase
Carbon sequestration on Mars: COMMENT Open Access
Distal ash hurricane (pyroclastic density current) deposits from a ca. 2000 yr B.P. Plinian-style eruption of Mount Pelée, Martinique: Distribution, grain-size characteristics, and implications for future hazard Available to Purchase
Lightning-induced shock lamellae in quartz Available to Purchase
The Pliensbachian–Toarcian (Early Jurassic) extinction: A North American perspective Available to Purchase
Currently, it is believed that volcanogenic outgassing of CO 2 during Karoo-Ferrar igneous province eruptions caused prolonged global warming and a multiphased extinction event during the Pliensbachian–Toarcian interval of the Early Jurassic. Warmer water temperatures are thought to have caused a release from the methane hydrate reservoir and global marine anoxia in the Early Toarcian (dubbed the Toarcian oceanic anoxic event). Recently, the timing and geographic extent of these events have been questioned, with emphasis placed on regional conditions in the Tethys Ocean area rather than global controls. Our study compares paleontological and geochemical data from western North America with previously established correlative data in Europe to provide a perspective on the duration, extent, and controlling mechanisms of this Early Jurassic extinction event. Our data indicate that during Pliensbachian–Toarcian time, concurrent with Karoo-Ferrar magmatism: (1) there were six globally correlative intervals of taxonomic diversity decline that constitute evidence of a multiphased extinction event; (2) there was a major disruption in the long-term δ 13 C profile (~3‰–7‰), suggesting volcanogenic CO 2 outgassing as a preeminent factor driving global warming and mass extinction; (3) there was a large negative excursion in the Early Toarcian δ 13 C profile in two successions on Haida Gwaii (formerly known as Queen Charlotte Islands), Canada, suggesting global methane release; and (4) the northeast Panthalassa Ocean did not contain anoxic water during the Early Toarcian. Although the Toarcian oceanic anoxic event does not appear to have globally affected every marine environment in the same manner, it is possible that local anoxic water masses occurred in restricted basins outside the Tethys Ocean area.