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all geography including DSDP/ODP Sites and Legs
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Asia
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Brahmaputra River (1)
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Buryat Russian Federation
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Vitim Plateau (1)
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Indian Peninsula
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Bangladesh (1)
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India (1)
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Siberia (1)
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Vitim River (1)
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Western Transbaikalia (1)
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Atlantic Ocean
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North Atlantic
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Gulf of Saint Lawrence (1)
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Wilmington Canyon (1)
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Australasia
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Australia
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Musgrave Ranges (1)
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Western Australia
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Yilgarn Craton (1)
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Cache Creek Terrane (1)
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Cambay Basin (1)
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Canada
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Eastern Canada
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Wellington County Ontario
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Quebec
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Western Canada
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Alberta (6)
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British Columbia
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Tulameen coal area (1)
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Manitoba (1)
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Saskatchewan (2)
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Commonwealth of Independent States
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Russian Federation
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Vitim Plateau (1)
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Pskov Russian Federation (1)
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Vitim River (1)
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Europe
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Alps
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Central Europe
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Pskov Russian Federation (1)
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North America
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United States
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Idaho
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Australasia
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Australia
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Western Australia
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Hamersley Province (1)
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Yilgarn Craton (1)
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Canada
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Eastern Canada
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Ontario
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Guelph Ontario (2)
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Quebec
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Western Canada
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British Columbia
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carbon
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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 Pleistocene
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upper Quaternary (1)
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climate change (1)
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dunite (1)
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volcanic rocks
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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
buried valleys
Aeromagnetic data reveals buried Quaternary drainage patterns in the Gulf of St Lawrence (Canada)
The Empress Group in Alberta, Canada
Constraining the lithostratigraphic architecture of a buried bedrock valley using surface electrical resistivity and seismic refraction tomography
ABSTRACT The paleogeographic evolution of the western U.S. Great Basin from the Late Cretaceous to the Cenozoic is critical to understanding how the North American Cordillera at this latitude transitioned from Mesozoic shortening to Cenozoic extension. According to a widely applied model, Cenozoic extension was driven by collapse of elevated crust supported by crustal thicknesses that were potentially double the present ~30–35 km. This model is difficult to reconcile with more recent estimates of moderate regional extension (≤50%) and the discovery that most high-angle, Basin and Range faults slipped rapidly ca. 17 Ma, tens of millions of years after crustal thickening occurred. Here, we integrated new and existing geochronology and geologic mapping in the Elko area of northeast Nevada, one of the few places in the Great Basin with substantial exposures of Paleogene strata. We improved the age control for strata that have been targeted for studies of regional paleoelevation and paleoclimate across this critical time span. In addition, a regional compilation of the ages of material within a network of middle Cenozoic paleodrainages that developed across the Great Basin shows that the age of basal paleovalley fill decreases southward roughly synchronous with voluminous ignimbrite flareup volcanism that swept south across the region ca. 45–20 Ma. Integrating these data sets with the regional record of faulting, sedimentation, erosion, and magmatism, we suggest that volcanism was accompanied by an elevation increase that disrupted drainage systems and shifted the continental divide east into central Nevada from its Late Cretaceous location along the Sierra Nevada arc. The north-south Eocene–Oligocene drainage divide defined by mapping of paleovalleys may thus have evolved as a dynamic feature that propagated southward with magmatism. Despite some local faulting, the northern Great Basin became a vast, elevated volcanic tableland that persisted until dissection by Basin and Range faulting that began ca. 21–17 Ma. Based on this more detailed geologic framework, it is unlikely that Basin and Range extension was driven by Cretaceous crustal overthickening; rather, preexisting crustal structure was just one of several factors that that led to Basin and Range faulting after ca. 17 Ma—in addition to thermal weakening of the crust associated with Cenozoic magmatism, thermally supported elevation, and changing boundary conditions. Because these causal factors evolved long after crustal thickening ended, during final removal and fragmentation of the shallowly subducting Farallon slab, they are compatible with normal-thickness (~45–50 km) crust beneath the Great Basin prior to extension and do not require development of a strongly elevated, Altiplano-like region during Mesozoic shortening.
Detecting fault zone characteristics and paleovalley incision using electrical resistivity: Loma Blanca Fault, New Mexico
The Origin of Terraces in Buried Valleys in the Northwest of the East European Plain
Stripping induced polarization effects from airborne electromagnetics to improve 3D conductivity inversion of a narrow palaeovalley
Geological framework of the Laurentian trough aquifer system, southern Ontario
ABSTRACT Thick successions of glacial sediments are important components of shallow aquifer systems, wetland ecologies, and aggregate resources in northeast Illinois. Multiscale mapping studies have often utilized single surface geophysical methods to locally characterize and map geologic units. In this study, two-dimensional (2-D) electrical resistivity methods were combined with high-resolution shear-wave seismic-reflection methods to better characterize glacial sediments and interpret geologic settings. Study sites were associated with sediments of a Wisconsinan phase of glaciation in northeast Illinois and included a regional bedrock valley, a buried tunnel valley, a pitted outwash fan, and an ice-marginal alluvial fan. Electrical resistivity methods were valuable tools with which to characterize textural relationships within geologic units, and they complement the seismic data with regard to stratigraphic boundaries. The seismic data indicated internal architectural features that were not resolvable with electrical resistivity methods. Thus, the combination of electrical methods and seismic methods improved both the detailed geologic characterization of natural resources as well as understanding of local glacial sedimentology.