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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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East Africa
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Tanzania
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Oldoinyo Lengai (1)
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West Africa
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Cameroon
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Mount Cameroon (1)
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Asia
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Far East
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Japan
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Hokkaido
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Usu (2)
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Miyake-Jima (1)
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Koma-ga-take (1)
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Kyushu
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Nagasaki Japan
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Unzen (3)
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Philippine Islands
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Luzon
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Mayon (1)
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Mount Pinatubo (5)
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Siwalik Range (1)
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Blue Mountains (2)
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precious metals (1)
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neodymium
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noble gases
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Mammalia
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Invertebrata
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geologic age
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upper Pleistocene (1)
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middle Tertiary (2)
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upper Miocene (2)
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upper Pliocene (1)
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Ringold Formation (1)
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upper Neogene (1)
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Paleogene
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Eocene
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Chumstick Formation (2)
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lower Eocene (2)
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middle Eocene
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Tyee Formation (1)
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upper Eocene
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Cowlitz Formation (1)
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Oligocene
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upper Oligocene
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Chattian (1)
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Paleocene
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lower Paleocene (1)
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Snoqualmie Batholith (1)
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upper Tertiary (1)
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upper Cenozoic (4)
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Laurentide ice sheet (1)
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Mesozoic
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Cretaceous
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Mancos Shale (1)
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Queen Charlotte Group (1)
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Upper Cretaceous
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Tuscaloosa Formation (1)
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Franciscan Complex (2)
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Coast Range Ophiolite (1)
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McHugh Complex (1)
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Paleozoic
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Carboniferous
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Chilliwack Group (2)
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Precambrian
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upper Precambrian
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Proterozoic
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Huronian
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Gowganda Formation (1)
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igneous rocks
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extrusive rocks (1)
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porphyry (1)
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volcanic rocks
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andesites (19)
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basalts
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flood basalts (2)
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mid-ocean ridge basalts (2)
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pyroclastics
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volcanic ash (3)
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metamorphic rocks
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silicates
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pyroxene group
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framework silicates
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plagioclase
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zeolite group
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orthosilicates
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titanite group
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zircon group
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sorosilicates
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chevkinite group
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epidote group
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sheet silicates
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sulfides (1)
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Primary terms
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absolute age (29)
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Africa
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East Africa
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Tanzania
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West Africa
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Cameroon
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Asia
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Far East
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Japan
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Hokkaido
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Usu (2)
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Honshu
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Izu-shichito
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Koma-ga-take (1)
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Kyushu
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Unzen (3)
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Mayon (1)
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Mount Pinatubo (5)
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Indian Peninsula
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Reference 1D Seismic Velocity Models for Volcano Monitoring and Imaging: Methods, Models, and Applications
Probing Deep Hydrogen Using Electrical Conductivity
Analyzing Volcanic, Tectonic, and Environmental Influences on the Seismic Velocity from 25 Years of Data at Mount St. Helens
Examining 22 Years of Ambient Seismic Wavefield at Mount St. Helens
Previously melt-depleted mantle beneath the Cascades Range arc
Two Asian cricetodontine-like muroid rodents from the Neogene of western North America
Fe 3+ /Fe T ratios of amphiboles determined by high spatial resolution single-crystal synchrotron Mössbauer spectroscopy
Why Study The Cascade Arc?
Cascadia: Subduction and People
The Nature of Active Magma Reservoirs and Storage Underneath Cascade Volcanoes
Quaternary Volcanism in the Cascade Arc
Volcano, Earthquake, and Tsunami Hazards of the Cascadia Subduction Zone
Tectonics and Geodynamics of the Cascadia Subduction Zone
Cenozoic magmatism and plate tectonics in western North America: Have we got it wrong?
ABSTRACT The current tectonic framework for understanding Cenozoic magmatism in western North America was laid out in a series of influential papers in the early days of the plate-tectonics revolution. These ideas, largely developed through deductive analysis, were so revolutionary yet seemingly self-evident that they quickly passed from hypothesis to axiom. These include the following. (1) Inboard and outboard sweeps of magmatism resulted from shallowing and then rapid steepening of a subducted slab. (2) The Oligocene–Miocene ignimbrite flareup resulted from sinking and rollback of a shallow slab. (3) Late Cenozoic basaltic magmatism resulted from opening of a slab window. (4) The current Cascade arc is the remnant of a much more continuous ancestral arc that ran the length of western North America. When tested against current databases of igneous rock ages and chemical analyses, these conjectures largely fail; some are clearly contradicted, whereas others are possible but ad hoc and unfalsifiable. Ironically, the plate-tectonics revolution nicely explains plate-boundary magmatism in much of the world but is less successful in western North America, where many of these links were first developed. It is time for a second revolution.
Strain Localization in Magmas
Stratigraphy, age, and provenance of the Eocene Chumstick basin, Washington Cascades; implications for paleogeography, regional tectonics, and development of strike-slip basins: Comment
The Mount Hood fault zone, active faulting at the crest of the dynamic Cascade Range, north-central Oregon, USA
ABSTRACT The Mount Hood fault zone is a N-trending, ~55-km-long zone of active faulting along the western margin of the Hood River graben in north-central Oregon. The Mount Hood fault zone occurs along the crest of the Cascade Range and consists of multiple active fault segments. It is presently unclear how much Hood River graben extension is actively accommodated on the fault zone, and how Cascade intra-arc extension accommodates regional patterns of clockwise rotation and northwest translation of crustal blocks in the Pacific Northwest region of the United States. Evidence for Holocene activity on the Mount Hood fault zone was discovered in 2009 after acquisition of high-resolution lidar topography of the area. This trip will visit sites displaying evidence of Holocene surface rupture on fault strands within the Mount Hood fault zone. Day 1 starts with a two-hour drive from Portland to Mount Hood, a 3429-m-high glaciated active volcano, where we will visit sites south of the summit along the Twin Lakes fault segment, including several fault scarps and two sites where dating of offset buried soils constrains the timing of the most recent surface-rupturing event to the Holocene. Day 1 includes two hikes of ~1 km and will be partly cross-country. The trip will overnight at the historic Timberline Lodge, an architectural masterpiece from the Civilian Conservation Corps (1933–1942) era, located at tree line on the southern flank of Mount Hood. Day 2 will visit sites north of the summit, stopping along the Blue Ridge fault segment to view the site of 2011 paleoseismic trenches and an offset glacial moraine. We will visit an unusual uphill-facing scarp in coarse talus along the Gate Creek fault segment near the north end of the Mount Hood fault zone. We will conclude Day 2 with a short hike into the Mark O. Hatfield Wilderness along the Gate Creek fault segment to view evidence of a surface-rupturing earthquake that occurred only a few centuries ago, illuminated by a nearby paleoseismic trench hand-dug in 2020. Our neotectonic and paleoseismic data are among the first efforts to document and characterize seismic sources within the Mount Hood fault zone. However, even with our new age data, fault slip rates and earthquake recurrence remain poorly constrained. With our limited earthquake timing data, it is not clear whether all segments of the Mount Hood fault zone rupture together as a ≥ M 7 earthquake, or alternatively, if the fault segments rupture independently in a sequence of smaller ~M 6–sized events.
ABSTRACT The Columbia River Gorge is the Columbia River’s long-held yet evolving passage through the volcanic arc of the Cascade Range. The globally unique setting of a continental-scale river bisecting an active volcanic arc at the leading edge of a major plate boundary creates a remarkable setting where dynamic volcanic and tectonic processes interact with diverse and energetic fluvial processes. This three-day field trip explores several elements of the gorge and its remarkable geologic history—cast here as a contest between regional tectonic and volcanic processes building and displacing landscapes, and the relentless power of the Columbia River striving to maintain a smooth passage to the sea. DEDICATION Dedicated to Russell C. Evarts (7 April 1947–11 July 2017) and his contributions to Pacific Northwest geology. Russ Evarts devoted most of his 30-year career with the U.S. Geological Survey to geologic mapping of Oregon and Washington. His thorough geologic mapping of the near-vertical terrain of the western Columbia River Gorge underpins much of what is reported in this guide and continues to inspire our studies of the geology of the Pacific Northwest.
The eight field trips in this volume, associated with GSA Connects 2021 held in Portland, Oregon, USA, reflect the rich and varied geological legacy of the Pacific Northwest. The western margin of North America has had a complex subduction and transform history throughout the Phanerozoic, building a collage of terranes. The terrain has been modified by Cenozoic sedimentation, magmatism, and faulting related to Cascadia subduction, passage of the Yellowstone hot spot, and north and westward propagation of the Basin and Range province. The youngest flood basalt province on Earth also inundated the landscape, while the mighty Columbia watershed kept pace with arc construction and funneled epic ice-age floods from the craton to the coast. Additional erosive processes such as landslides continue to shape this dynamic geological wonderland.