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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 (1)
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Limpopo Belt (1)
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Southern Africa
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South Africa (2)
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Zimbabwe (1)
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Zimbabwe Craton (1)
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Alpine Fault (1)
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Antarctica
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Arctic region
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Asia
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Altai Russian Federation (1)
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Angara River (1)
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Baikal rift zone (1)
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Buryat Russian Federation (2)
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Central Asia
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Kazakhstan
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Eastern Kazakhstan (1)
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Far East
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China
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Liaoning China
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Mongolia (1)
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Himalayas
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Kerala India
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Sikkim India (1)
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Singhbhum shear zone (1)
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Jammu and Kashmir
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Ladakh (1)
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Nepal (1)
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Pakistan (1)
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Indus-Yarlung Zangbo suture zone (1)
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Siberia (1)
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Atlantic Ocean
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Avalon Zone (2)
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Caledonides (5)
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Canada
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Eastern Canada
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Maritime Provinces
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Nova Scotia
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Cobequid Highlands (1)
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Meguma Terrane (1)
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Newfoundland and Labrador
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Labrador (2)
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Newfoundland (2)
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Ontario
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Hemlo Deposit (1)
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Nunavut
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Western Canada
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Alberta
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Canadian Cordillera (1)
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Canadian Rocky Mountains (2)
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Manitoba (2)
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Northwest Territories
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Great Slave Lake (1)
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Saskatchewan
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Yukon Territory (2)
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Colorado River (1)
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Commonwealth of Independent States
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Kazakhstan
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Rudny Altai (1)
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Russian Federation
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Europe
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Central Europe
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Austria
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Pyrenees
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Southern Europe
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Greece
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Greek Aegean Islands
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Italy
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Sardinia Italy (2)
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Rhodope Mountains (1)
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Variscides (2)
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Western Europe
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France
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Central Massif (1)
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Dauphine Alps
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Belledonne Massif (1)
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French Pyrenees (1)
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Limousin (1)
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Pyrenees-Orientales France
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Agly Massif (1)
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Ireland
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Donegal Ireland (1)
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Galway Ireland
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Sligo Ireland (1)
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Scandinavia
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Norway
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Nordland Norway
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Northern Norway (1)
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Southern Norway (1)
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Vesteralen (1)
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Sweden (1)
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United Kingdom
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Great Britain
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Scotland
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Highland region Scotland (1)
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Moine thrust zone (2)
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Scottish Highlands
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Grampian Highlands (1)
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Shetland Islands (1)
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Northern Ireland (1)
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Madison Range (2)
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Mediterranean region
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Aegean Islands
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Greek Aegean Islands
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Cyclades (2)
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Mexico
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Oaxaca Mexico (1)
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Sonora Mexico (2)
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North America
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Appalachians
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Blue Ridge Province (1)
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Northern Appalachians (1)
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Piedmont (2)
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Southern Appalachians (3)
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Basin and Range Province
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Great Basin (2)
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Canadian Shield
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Rae Province (2)
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Snowbird tectonic zone (1)
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Grenville Province
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Central Metasedimentary Belt (1)
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Slave Province (1)
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Superior Province (4)
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Grenville Front (4)
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North American Cordillera
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Okanogan Range (1)
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Rocky Mountains
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Rocky Mountains foreland (2)
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Shuswap Complex (1)
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Yukon-Tanana Upland (1)
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Pacific Ocean
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North Pacific
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Northwest Pacific
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Okhotsk Sea (1)
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West Pacific
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Northwest Pacific
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Okhotsk Sea (1)
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Red River Fault (1)
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Ruby Mountains (2)
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Santa Catalina Mountains (3)
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South America
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Argentina
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Cordoba Argentina (1)
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Pampean Mountains (2)
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Santiago del Estero Argentina (1)
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Brazil
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Borborema Province (1)
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Chile
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Atacama Chile (1)
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Rio de la Plata Craton (1)
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South Island (2)
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United States
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Alaska (1)
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Arizona
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Cochise County Arizona (1)
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Maricopa County Arizona (1)
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Pima County Arizona (3)
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Pinal County Arizona (2)
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Rincon Mountains (1)
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Tucson Basin (1)
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California
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Central California (1)
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Los Angeles County California (1)
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San Bernardino County California
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Old Woman Mountains (1)
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Whipple Mountains (4)
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San Gabriel Mountains (1)
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Southern California (3)
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Colorado
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Custer County Colorado (1)
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Fremont County Colorado
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Canon City Colorado (1)
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Pueblo County Colorado (1)
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Wet Mountains (1)
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Georgia
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Habersham County Georgia (1)
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Hall County Georgia (1)
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Stephens County Georgia (1)
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Great Basin (2)
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Idaho
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Bonner County Idaho (3)
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Clearwater County Idaho (1)
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Idaho County Idaho (1)
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Kootenai County Idaho (1)
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Idaho Batholith (2)
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Mojave Desert (2)
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Montana
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Gallatin County Montana (1)
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Madison County Montana (1)
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Missoula County Montana (1)
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Ravalli County Montana (3)
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Nevada
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Elko County Nevada
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East Humboldt Range (2)
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White Pine County Nevada (2)
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New Mexico (1)
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New York
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Adirondack Mountains (2)
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Lewis County New York (1)
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Saint Lawrence County New York (1)
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North Carolina
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Henderson County North Carolina (1)
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Madison County North Carolina (1)
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Transylvania County North Carolina (1)
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Southwestern U.S. (1)
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Tennessee
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Cocke County Tennessee (1)
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U. S. Rocky Mountains
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Bitterroot Range (3)
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Wet Mountains (1)
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Virginia
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Campbell County Virginia (1)
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Charlotte County Virginia (1)
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Halifax County Virginia (1)
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Washington
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Ferry County Washington (2)
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Pend Oreille County Washington (3)
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Spokane County Washington (1)
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Stevens County Washington (1)
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Wyoming (1)
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Wyoming Province (2)
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commodities
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barite deposits (1)
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metal ores
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antimony ores (1)
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copper ores (1)
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gold ores (6)
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lead ores (1)
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molybdenum ores (1)
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nickel ores (1)
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polymetallic ores (1)
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rare earth deposits (1)
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silver ores (1)
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uranium ores (1)
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zinc ores (1)
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mineral deposits, genesis (9)
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mineral exploration (2)
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elements, isotopes
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boron
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B-11/B-10 (1)
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carbon
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C-13/C-12 (1)
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-
isotope ratios (3)
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isotopes
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radioactive isotopes
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U-238/Pb-206 (1)
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stable isotopes
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B-11/B-10 (1)
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C-13/C-12 (1)
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Nd-144/Nd-143 (1)
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O-18/O-16 (2)
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Sr-87/Sr-86 (2)
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U-238/Pb-206 (1)
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Lu/Hf (1)
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metals
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actinides
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thorium (2)
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uranium
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U-238/Pb-206 (1)
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alkali metals
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cesium (1)
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lithium (2)
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rubidium (1)
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alkaline earth metals
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strontium
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Sr-87/Sr-86 (2)
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aluminum (1)
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hafnium (1)
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lead
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U-238/Pb-206 (1)
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manganese (1)
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rare earths
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europium (2)
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neodymium
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Nd-144/Nd-143 (1)
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-
-
titanium (3)
-
-
noble gases
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radon (1)
-
-
oxygen
-
O-18/O-16 (2)
-
-
-
geochronology methods
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(U-Th)/He (2)
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Ar/Ar (17)
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fission-track dating (1)
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K/Ar (5)
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Lu/Hf (1)
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paleomagnetism (1)
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Pb/Pb (2)
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Rb/Sr (5)
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Re/Os (1)
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Sm/Nd (2)
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Th/U (1)
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thermochronology (5)
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U/Pb (24)
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U/Th/Pb (2)
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geologic age
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Cenozoic
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Tertiary
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middle Tertiary (2)
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Neogene
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Miocene
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lower Miocene (2)
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upper Miocene (1)
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-
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Paleogene
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Eocene
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lower Eocene (1)
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middle Eocene (1)
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lower Paleogene (1)
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Paleocene
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upper Paleocene (1)
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-
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Dalradian (1)
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Mesozoic
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Cretaceous
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Lower Cretaceous
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Aptian (1)
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Upper Cretaceous (7)
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Jurassic
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Lower Jurassic
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Pliensbachian (1)
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Middle Jurassic (1)
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Triassic (1)
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upper Mesozoic (1)
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Paleozoic
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Cambrian
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Lower Cambrian
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Terreneuvian (1)
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Upper Cambrian
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Furongian (2)
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-
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Carboniferous
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Mississippian (1)
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Pennsylvanian
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Upper Pennsylvanian (1)
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-
-
Devonian
-
Upper Devonian
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Palliser Formation (1)
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-
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lower Paleozoic
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Henderson Gneiss (1)
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Ordovician
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Upper Ordovician (1)
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Permian
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Upper Permian (1)
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Silurian
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Upper Silurian (1)
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-
upper Paleozoic (2)
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Precambrian
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Archean
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Neoarchean
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Sargur Group (1)
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-
-
Lewisian Complex (1)
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upper Precambrian
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Proterozoic
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Lewisian (1)
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Mesoproterozoic (1)
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Neoproterozoic
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Cryogenian (1)
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Ediacaran (1)
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Moinian (1)
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Tonian (1)
-
-
Paleoproterozoic
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Dhanjori Group (1)
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Orosirian (1)
-
-
-
-
-
-
igneous rocks
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igneous rocks
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granophyre (1)
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hypabyssal rocks (1)
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kimberlite (1)
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plutonic rocks
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anorthosite (1)
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diorites
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plagiogranite (1)
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quartz diorites (1)
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tonalite (4)
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trondhjemite (1)
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gabbros (2)
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granites
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adamellite (1)
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granosyenite (1)
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leucogranite (3)
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S-type granites (1)
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two-mica granite (1)
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granodiorites (4)
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monzonites (1)
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pegmatite (5)
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quartz monzonite (1)
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syenites
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albitite (1)
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granosyenite (1)
-
-
ultramafics
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peridotites
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dunite (2)
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harzburgite (4)
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spinel lherzolite (1)
-
-
-
-
porphyry (2)
-
volcanic rocks
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dacites (1)
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rhyolites (2)
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-
-
ophiolite (1)
-
-
metamorphic rocks
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metamorphic rocks
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amphibolites (5)
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cataclasites (4)
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eclogite (1)
-
gneisses
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augen gneiss (3)
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banded gneiss (1)
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granite gneiss (2)
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orthogneiss (8)
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paragneiss (3)
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granulites (1)
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metaigneous rocks
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metagranite (5)
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serpentinite (2)
-
-
metaplutonic rocks (2)
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metasedimentary rocks
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metaconglomerate (1)
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paragneiss (3)
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metasomatic rocks
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serpentinite (2)
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metavolcanic rocks (2)
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migmatites (2)
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mylonites
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blastomylonite (2)
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pseudotachylite (5)
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ultramylonite (5)
-
-
schists
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blueschist (1)
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greenschist (1)
-
-
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ophiolite (1)
-
-
minerals
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arsenides
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arsenopyrite (1)
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lollingite (1)
-
-
carbonates
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calcite (1)
-
-
native elements
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diamond
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microdiamond (1)
-
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graphite (4)
-
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oxides
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cassiterite (1)
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chromite (1)
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spinel (1)
-
tantalates
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tantalite (2)
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wodginite (1)
-
-
-
phosphates
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amblygonite (1)
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apatite (2)
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lithiophilite (1)
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monazite (4)
-
-
silicates
-
chain silicates
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amphibole group
-
clinoamphibole
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hornblende (2)
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tremolite (1)
-
-
orthoamphibole
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anthophyllite (1)
-
-
-
pyroxene group
-
clinopyroxene
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diopside (1)
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spodumene (1)
-
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orthopyroxene (1)
-
-
-
framework silicates
-
feldspar group
-
alkali feldspar
-
K-feldspar (4)
-
-
plagioclase (4)
-
-
silica minerals
-
quartz (9)
-
-
zeolite group
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pollucite (2)
-
-
-
orthosilicates
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nesosilicates
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garnet group
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spessartine (1)
-
-
olivine group
-
olivine (2)
-
-
titanite group
-
titanite (3)
-
-
zircon group
-
zircon (16)
-
-
-
sorosilicates
-
epidote group
-
allanite (1)
-
clinozoisite (1)
-
epidote (1)
-
-
-
-
ring silicates
-
beryl (1)
-
tourmaline group
-
elbaite (2)
-
-
-
sheet silicates
-
chlorite group
-
chlorite (2)
-
cookeite (1)
-
-
mica group
-
biotite (6)
-
lepidolite (1)
-
muscovite (5)
-
-
petalite (1)
-
serpentine group
-
serpentine (1)
-
-
-
-
sulfides
-
arsenopyrite (1)
-
bornite (1)
-
chalcopyrite (1)
-
galena (1)
-
molybdenite (1)
-
pyrite (1)
-
-
-
Primary terms
-
absolute age (38)
-
Africa
-
East Africa
-
Tanzania (1)
-
-
Limpopo Belt (1)
-
Southern Africa
-
South Africa (2)
-
Zimbabwe (1)
-
-
Zimbabwe Craton (1)
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Antarctica
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East Antarctica (1)
-
-
Arctic region
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Greenland (1)
-
-
Asia
-
Altai Russian Federation (1)
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Angara River (1)
-
Baikal rift zone (1)
-
Buryat Russian Federation (2)
-
Central Asia
-
Kazakhstan
-
Eastern Kazakhstan (1)
-
-
-
Far East
-
China
-
Chongqing China (1)
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Henan China (1)
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Hubei China (1)
-
Inner Mongolia China (1)
-
Liaoning China
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Liaodong Peninsula (1)
-
-
North China Platform (2)
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Qinling Mountains (2)
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Shaanxi China (1)
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Yunnan China
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Ailao Shan (1)
-
-
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Mongolia (1)
-
-
Himalayas
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Kumaun Himalayas (1)
-
-
Indian Peninsula
-
India
-
Himachal Pradesh India
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Chamba India (1)
-
-
Kerala India
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Cannanore India (1)
-
-
Sikkim India (1)
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Singhbhum shear zone (1)
-
Uttarakhand India
-
Garhwal India (1)
-
-
-
Jammu and Kashmir
-
Ladakh (1)
-
-
Nepal (1)
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mylonitization
Late Paleozoic igneous rocks at Clarke Head, Nova Scotia: magmatism at an arc to back-arc transition
Abstract This study re-examines a reported mylonitic ‘metabasic granulite’ block in a megabreccia that is the most outboard igneous rock outcrop in the Avalon terrane, near the Meguma–Avalon terrane boundary in the northern Appalachians. The block of foliated gabbro is one of several igneous rock blocks in a largely dissolved salt wall and in style of deformation, mineralogy, lithogeochemistry and Sm/Nd isotopes resembles foliated and locally mylonitized late Devonian–early Carboniferous gabbro plutons along the Cobequid Shear Zone to the north. Garnet porphyroclasts in the foliated gabbro are exceptional, with a distinctive composition of Alm 55 Pyr 25 Grs 13 And 4 Sps 3 . Inclusions of pyroxene, andesine and ilmenite, lack of zoning and corroded rims suggest the garnets are antecrysts. Elsewhere in the world, garnets of similar composition in arc-related andesites are interpreted to be from disintegration of comagmatic cumulate material at 0.8–1.0 GPa under hydrous conditions. The Clarke Head foliated gabbro has two mafic components, one resembling arc-related hydrous magma and the other with tholeiitic back-arc character, similar to coeval rocks in the Cobequid Highlands. The gabbro is a product of complex mixing in crustal magma chambers and rapid rise of magma containing lower crustal antecrysts along strike-slip faults.
Fluid environment controls along-strike variation in slip style: Midcrustal geological signatures from the Red River fault, China
Cenozoic Pb–Zn–Ag mineralization in the Western Alps
The Late Paleocene–Eocene Extension and Differential Denudation in the Eastern Daqingshan Mountains Around the Northeastern Margin of the Ordos Block, Western North China Craton, Constrained by Apatite (U-Th)/He Thermochronology
Structural Analysis and Chronologic Constraints on Progressive Deformation within the Rincon Mountains, Arizona: Implications for Development of Metamorphic Core Complexes
ABSTRACT Investigation of exhumed and well-exposed crustal-scale fault zones provides a rare window into the mechanics and timing of a broad range of deformation mechanisms, strain localization, and fault zone behavior. Here, we apply and integrate geo- and thermochronology analytics to carefully described brittle-ductile structural characteristics of the Catalina detachment zone as exposed in the Rincon Mountains domain of the Catalina-Rincon metamorphic core complex. This core complex is an exhumed extensional, broad-scale-normal-slip shear zone near Tucson, Arizona, USA. The Catalina detachment zone, as formulated here, is partitioned into a brittle-ductile fault-rock stratigraphy that evolved through progressive deformation. The Catalina-Rincon Mountains metamorphic core complex is one of the original type localities of Cordilleran metamorphic core complexes in western North America and has a long history of scientific study to document its structural characteristics and decipher its evolution in the context of Mid-Cenozoic extension. In this Memoir, we seek to provide a thorough accounting of the evolution of this shear zone, through integrating and synthesizing decades of previous research with new mapping, structural data, and geochronological analyses. The Catalina detachment zone stratigraphy is made up of the Catalina detachment fault, cataclasite, chloritic protocataclasite (referred to in most core-complex literature as “chlorite breccia”), subdetachment faults, and mylonites. When it was active, this zone accommodated a minimum of ~36 km of top-to-the-SW displacement. Characterizing the progressive evolution of this metamorphic core complex fault-rock stratigraphy requires a detailed accounting of the kinematic and temporal history of the detachment zone. Consequently, we first characterize and describe each structural unit and feature of this crustal-scale fault and shear zone network through the combination of previously published mapping, structural and microfabric analyses and newly collected structural data, thin-section analysis, large-scale mapping, and reinterpretation of stratigraphic and structural relations in the adjacent Tucson Basin. To improve our broad-scale mapping efforts, we employ multispectral analysis, successfully delineating specific fault-rock stratigraphic units at the core-complex scale. We then establish kinematic and absolute timing constraints by integrating results from well-log and seismic reflection data and with new and previously published zircon U-Pb, 40 Ar/ 39 Ar, 40 K/ 40 Ar geochronological, (U/Th)/He, 4 He/ 3 He, and apatite fission track thermochronological analyses. These temporal constraints indicate a deformation sequence that progressed through mylonitization, cataclasis, mini-detachment faulting, subdetachment faulting, and detachment faulting. This multidisciplinary investigation reveals that mylonitization occurred in late Oligocene time (ca. 26–22 Ma), coeval with rapid exhumation of the lower plate, and that slip on the Catalina detachment fault ceased by early Miocene, ca. 17 Ma. This temporal framework is consistent with results of our subsurface analysis of stratigraphic and structural relations in the Tucson Basin. Onset of metamorphic core complex deformation in southern Arizona slightly preceded that in central and western Arizona and southeasternmost California. Our compiled data sets suggest a shear-zone evolution model that places special emphasis on the transformation of mylonite to chloritic protocataclasite, and strain localization onto subdetachment, minidetachment, and detachment faults over time. Our model envisions mylonites drawn upward through a fluids-sourced brittle-ductile transition zone marked by elevated fluid pressures. This emphasis draws upon seminal work by Jane Selverstone and Gary Axen in analyzing structural-mechanical evolution in the Whipple Mountains metamorphic core complex. Progressive embrittlement and strength-hardening of the lower-plate rocks are manifest in intensive fracturing and minidetachment faulting, favored by the change in rheology produced by alteration-mineral products. Subdetachment faults, localized by earlier-formed ultramylonite and calc-silicate tectonite, coalesce to produce a proto-detachment fault, which marks the interface between mylonite and chlorite protocataclasite. Linking and smoothing of minidetachment faults within chloritic protocataclasite led to emergence of the Catalina detachment fault proper. All of this, from mylonite formation to final slippage on the detachment fault, kinematically conforms to top-to-the-SW shear. The macro-form of the antiformal-synformal corrugations of the Rincon Mountains began developing while mylonites were forming, continuing to amplify during proto-detachment faulting and detachment faulting. We emphasize and describe with examples how the timing and tectonic significance of mylonitization, cataclasis, and detachment faulting within the Catalina-Rincon metamorphic core complex continues to be hotly debated. Disagreements center today, as they have in the past, on the degree to which the structures and fabrics in the Rincons are Laramide products, mid-Cenozoic products, or some combination of both. In addressing tectonic heritage with respect to the Catalina detachment zone, it is hoped that the proposed model of progressive evolution of the Catalina detachment-zone shear zone will inform other studies of active and ancient metamorphic core complexes around the globe. In this regard, some new transferable emphases and methodologies emerged from this work, above and beyond what are now standard operating procedures for understanding crustal shear zones in general, and metamorphic core complexes particularly. For example, remote multispectral image analysis combined with ground-truth field analysis permitted mapping the full extent of chloritic protocataclasite, one of the best exposures of same globally, which is perhaps the most strategic fault rock in exploring the brittle-ductile transition. The added value of complete map control for chloritic protocataclasite is exploring, at its base in other metamorphic core complexes, for the presence of subdetachment faulting, i.e., proto-detachment faulting that influenced localization of detachment zones proper. Another example is the importance of continuously searching for certain mylonite protolith that yields opportunities for closely constraining timing of mylonitization. In our case, it is the Loma Alta mylonite that, more than any other protolith unit in the Rincon Mountains, permitted ‘locking’ the age of mylonitization as late Oligocene. We hope that insights from this detailed study will inform analyses of similar crustal-scale fault zones, both ancient and modern. Given its ready accessibility compared to most metamorphic core complexes, the Rincon Mountains present opportunities for others to use this contribution as part of the basis for exploiting this natural laboratory in research, teaching, and public science.