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NARROW
GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Africa
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Afar (1)
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East Africa
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Ethiopia (1)
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Southern Africa
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Kaapvaal Craton (1)
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South Africa
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Transvaal region (1)
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Antarctica
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Asia
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Far East
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China
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Philippine Islands
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Luzon
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Kamchatka Russian Federation
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Uzon (1)
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Australasia
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New Zealand
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Black Hills (5)
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Cascade Range (2)
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Europe
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Laramie Mountains (2)
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Western U.S. (14)
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geologic age
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Tertiary
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Mesozoic
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sheet silicates
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sulfates
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sulfides
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Primary terms
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absolute age (23)
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Africa
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Afar (1)
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East Africa
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Ethiopia (1)
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Southern Africa
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Kaapvaal Craton (1)
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Transvaal region (1)
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-
-
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Antarctica
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Antarctic Peninsula (1)
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Asia
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Far East
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China
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Dabie Mountains (1)
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North China Platform (1)
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Sulu Terrane (1)
-
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Philippine Islands
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Luzon
-
Mount Pinatubo (1)
-
-
-
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Kamchatka Russian Federation
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Kamchatka Peninsula
-
Uzon (1)
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-
-
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associations (1)
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Australasia
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Australia
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Western Australia
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Pilbara Craton (1)
-
-
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New Zealand
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Okataina volcanic centre (1)
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Taupo (2)
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Taupo volcanic zone (4)
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-
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bacteria (12)
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Canada
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Western Canada
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carbon
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organic carbon (1)
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Cenozoic
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Quaternary
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Holocene
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upper Holocene (2)
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Pleistocene
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Bishop Tuff (2)
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Illinoian (1)
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upper Pleistocene
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Sangamonian (1)
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Wisconsinan
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lower Wisconsinan (1)
-
-
-
-
upper Quaternary
-
Bull Lake Glaciation (1)
-
Pinedale Glaciation (1)
-
-
-
Tertiary
-
John Day Formation (1)
-
Neogene
-
Miocene
-
Columbia River Basalt Group (1)
-
Topopah Spring Member (1)
-
Wanapum Basalt (1)
-
-
Pliocene (2)
-
-
Paleogene
-
Eocene
-
Clarno Formation (1)
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lower Eocene
-
Willwood Formation (1)
-
-
middle Eocene (1)
-
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Oligocene (1)
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Paleocene (2)
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Paleocene-Eocene Thermal Maximum (1)
-
-
-
-
chemical analysis (2)
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Chordata
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Vertebrata
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Tetrapoda
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Mammalia
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Theria
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Eutheria
-
Perissodactyla
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Hippomorpha
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Equidae (1)
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-
-
Rodentia
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Myomorpha
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Cricetidae
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Microtus (1)
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Rehydrated glass embayments record the cooling of a Yellowstone ignimbrite
Strong seismic anisotropy due to upwelling flow at the root of the Yellowstone mantle plume
Travertine records climate-induced transformations of the Yellowstone hydrothermal system from the late Pleistocene to the present
Growth and evolution of Neoarchean–Paleoproterozoic crust in the NW Wyoming Province: Evidence from zircon U-Pb age and Lu-Hf isotopes of the Montana metasedimentary terrane
A Deep‐Learning Phase Picker with Calibrated Bayesian‐Derived Uncertainties for Earthquakes in the Yellowstone Volcanic Region
Analysis of the fluvial stratigraphic response to the Paleocene–Eocene Thermal Maximum in the Bighorn Basin, U.S.A.
ABSTRACT The Archean Wyoming Province formed and subsequently grew through a combination of magmatic and tectonic processes from ca. 4.0 to 2.5 Ga. Turning points in crustal evolution are recorded in four distinct phases of magmatism: (1) Early mafic magmatism formed a primordial crust between 4.0 and 3.6 Ga and began the formation of a lithospheric keel below the Wyoming Province in response to active plume-like mantle upwelling in a “stagnant lid”–type tectonic environment; (2) earliest sialic crust formed in the Paleoarchean by melting of hydrated mafic crust to produce rocks of the tonalite-trondhjemite-granodiorite (TTG) suite from ca. 3.6 to 2.9 Ga, with a major crust-forming event at 3.3–3.2 Ga that was probably associated with a transition to plate tectonics by ca. 3.5 Ga; (3) extensive calc-alkalic magmatism occurred during the Mesoarchean and Neoarchean (ca. 2.85–2.6 Ga), forming plutons that are compositionally equivalent to modern-day continental arc plutons; and (4) a late stage of crustal differentiation occurred through intracrustal melting processes ca. 2.6–2.4 Ga. Periods of tectonic quiescence are recognized in the development of stable platform supracrustal sequences (e.g., orthoquartzites, pelitic schists, banded iron formation, metabasites, and marbles) between ca. 3.0 and 2.80 Ga. Evidence for late Archean tectonic thickening of the Wyoming Province through horizontal tectonics and lateral accretion was likely associated with processes similar to modern-style convergent-margin plate tectonics. Although the province is surrounded by Paleoproterozoic orogenic zones, no post-Archean penetrative deformation or calc-alkalic magmatism affected the Wyoming Province prior to the Laramide orogeny. Its Archean crustal evolution produced a strong cratonic continental nucleus prior to incorporation within Laurentia. Distinct lithologic suites, isotopic compositions, and ages provide essential reference markers for models of assembly and breakup of the long-lived Laurentian supercontinent.
ABSTRACT The Montana metasedimentary terrane (MMT) forms the NW margin of the Wyoming Province in present coordinates. The MMT preserves a multistage Paleoproterozoic tectonic history that clarifies the position of the Wyoming craton during assembly and breakup of the Precambrian Kenorland supercontinent and the subsequent assembly of Laurentia’s Precambrian basement. In SW Montana, burial, metamorphism, deformation, and partial melting attributed to orogeny were superimposed on Archean quartzofeldspathic orthogneisses and paragneisses at ca. 2.55 and ca. 2.45 Ga during the Tendoy and Beaverhead orogenies, respectively. Subsequent stability was disrupted at 2.06 Ga, when probable rift-related mafic dikes and sills intruded the older gneisses. The MMT was profoundly reworked by tectonism again as a consequence of the ca. 1.8–1.7 Ga Big Sky orogeny, during which juvenile metasupracrustal suites characteristic of an arc (the Little Belt arc) and back-arc basin collapsed against the Wyoming craton continental margin. The northern margin of the Wyoming craton occupied an upper-plate position south of a south-dipping subduction zone at that time. Lithostratigraphic correlations link the southeastern Wyoming and southern Superior cratons at ca. 2.45 Ga with the Wyoming craton joined to the Kenorland supercontinent in an inverted position relative to present coordinates. This places the MMT along an open supercontinental margin, in a position permissive of collision or accretion and orogeny during a time when other parts of Kenorland were experiencing mafic volcanism and incipient rifting. The ca. 2.45 Ga Beaverhead orogeny in the MMT was most likely the consequence of collision with one of the Rae family of cratons, which share a history of tectonism at this time. The Beaverhead collision enveloped the Wyoming craton in a larger continental landmass and led to the 2.45–2.06 Ga period of tectonic quiescence in the MMT. Breakup of Kenorland occurred ca. 2.2–2.0 Ga. In the MMT, this is expressed by the 2.06 Ga mafic dikes and sills that crosscut older gneisses. The Wyoming craton would have been an island continent within the Manikewan Ocean after rifting from Kenorland on one side and from the Rae family craton on the MMT side. Subduction beneath the MMT in the Wyoming craton started no later than 1.87 Ga and was active until 1.79 Ga. This opened a back-arc basin and created the Little Belt arc to the north of the craton, contributed to the demise of the Manikewan Ocean, and culminated in collision along the Big Sky orogen starting ca. 1.78 Ga. Collision across the Trans-Hudson orogen in Canada occurred during a slightly earlier period. Thus, docking of the Wyoming craton reflects the final stage in the closure of the Manikewan Ocean and the amalgamation of the Archean cratons of Laurentia.
Geophysical extent of the Wyoming Province, western USA: Insights into ancient subduction and craton stability
The dynamic floor of Yellowstone Lake, Wyoming, USA: The last 14 k.y. of hydrothermal explosions, venting, doming, and faulting
ABSTRACT We report the results of 167 calcite twinning strain analyses (131 limestones and 36 calcite veins, n = 7368 twin measurements) from the Teton–Gros Ventre (west; n = 21), Wind River ( n = 43), Beartooth ( n = 32), Bighorn ( n = 32), and Black Hills (east; n = 11) Laramide uplifts. Country rock limestones record only a layer-parallel shortening (LPS) strain fabric in many orientations across the region. Synorogenic veins record both vein-parallel shortening (VPS) and vein-normal shortening (VNS) fabrics in many orientations. Twinning strain overprints were not observed in the limestone or vein samples in the supracrustal sedimentary veneer (i.e., drape folds), thereby suggesting that the deformation and uplift of Archean crystalline rocks that form Laramide structures were dominated by offset on faults in the Archean crystalline basement and associated shortening in the midcrust. The twinning strains in the pre-Sevier Jurassic Sundance Formation, in the frontal Prospect thrust of the Sevier belt, and in the distal (eastern) foreland preserve an LPS oriented approximately E-W. This LPS fabric is rotated in unique orientations in Laramide uplifts, suggesting that all but the Bighorn Mountains were uplifted by oblique-slip faults. Detailed field and twinning strain studies of drape folds identified second-order complexities, including: layer-parallel slip through the fold axis (Clarks Fork anticline), attenuation of the sedimentary section and fold axis rotation (Rattlesnake Mountain), rotation of the fold axis and LPS fabric (Derby Dome), and vertical rotations of the LPS fabric about a horizontal axis with 35% attenuation of the sedimentary section (eastern Bighorns). Regional cross sections (E-W) across the Laramide province have an excess of sedimentary veneer rocks that balance with displacement on a detachment at 30 km depth and perhaps along the Moho discontinuity at 40 km depth. Crustal volumes in the Wyoming Province balance when deformation in the western hinterland is included.