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NARROW
GeoRef Subject
-
all geography including DSDP/ODP Sites and Legs
-
Africa
-
Limpopo Belt (1)
-
North Africa
-
Algeria (1)
-
Atlas Mountains (1)
-
Egypt
-
Nile Delta (1)
-
Sinai Egypt (1)
-
-
Morocco
-
Rif (1)
-
-
Tell (1)
-
-
Reguibat Ridge (1)
-
Southern Africa
-
Barberton greenstone belt (1)
-
Kaapvaal Craton (1)
-
Namibia
-
Kaoko Belt (1)
-
-
-
West Africa
-
Guinea (1)
-
Liberia (1)
-
Mauritania (1)
-
Nigeria (1)
-
Senegal (1)
-
Sierra Leone (1)
-
-
West African Shield (1)
-
Zimbabwe Craton (1)
-
-
Antarctica
-
Marie Byrd Land
-
Fosdick Mountains (1)
-
-
-
Arctic Ocean
-
Beaufort Sea (1)
-
-
Arctic region
-
Greenland
-
East Greenland (1)
-
Godthabsfjord (1)
-
West Greenland (1)
-
-
Russian Arctic
-
Franz Josef Land (1)
-
Novaya Zemlya (1)
-
Severnaya Zemlya (1)
-
-
Svalbard
-
Spitsbergen (2)
-
-
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Arran (1)
-
Asia
-
Far East
-
Burma (2)
-
China
-
Anhui China (1)
-
North China Platform (1)
-
South China Block (1)
-
-
Indonesia
-
Sumatra (1)
-
-
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Indian Peninsula
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India
-
Dharwar Craton (1)
-
-
Pakistan (1)
-
-
Krasnoyarsk Russian Federation
-
Severnaya Zemlya (1)
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Taymyr Dolgan-Nenets Russian Federation
-
Taymyr Peninsula (1)
-
-
-
Middle East
-
Dead Sea Rift (3)
-
Iran (1)
-
Lebanon (1)
-
Syria (1)
-
Turkey
-
North Anatolian Fault (2)
-
Sea of Marmara (1)
-
Sea of Marmara region (2)
-
-
-
West Siberia
-
Severnaya Zemlya (1)
-
-
-
Atlantic Ocean
-
North Atlantic
-
Bay of Biscay (1)
-
Caribbean Sea
-
Cayman Trough (1)
-
-
Flemish Cap (1)
-
North Sea (1)
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Northeast Atlantic (1)
-
-
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Atlantic Ocean Islands
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Shetland Islands (1)
-
-
Atlantic region (1)
-
Australasia
-
Australia
-
Western Australia (1)
-
-
New Zealand
-
Wanganui Valley (1)
-
-
-
Avalon Zone (1)
-
Beaufort-Mackenzie Basin (1)
-
Cache Creek Terrane (1)
-
Caledonides (2)
-
Canada
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Arctic Archipelago (1)
-
Cassiar Mountains (2)
-
Eastern Canada
-
Maritime Provinces
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New Brunswick (1)
-
Nova Scotia
-
Antigonish County Nova Scotia (1)
-
Minas Basin (1)
-
-
-
Matachewan dike swarm (1)
-
Meguma Terrane (2)
-
Newfoundland and Labrador
-
Labrador (1)
-
Newfoundland
-
Baie Verte Peninsula (2)
-
-
-
Ontario
-
Eye-Dashwa Lakes Pluton (2)
-
-
Quebec
-
Abitibi County Quebec
-
Val d'Or Quebec (1)
-
-
Gaspe Peninsula (1)
-
-
-
Western Canada
-
Alberta (3)
-
British Columbia
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Fernie Basin (1)
-
Queen Charlotte Islands (1)
-
Vancouver Island (4)
-
-
Canadian Cordillera (7)
-
Canadian Rocky Mountains (4)
-
Manitoba
-
Lac du Bonnet Batholith (2)
-
-
Northwest Territories
-
Mackenzie Delta (1)
-
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Selwyn Basin (1)
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Yukon Territory (4)
-
-
-
Caribbean region
-
West Indies
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Antilles
-
Greater Antilles
-
Cuba (1)
-
Hispaniola
-
Dominican Republic (1)
-
-
-
-
-
-
Cascade Range (1)
-
Cascadia subduction zone (1)
-
Central America
-
Costa Rica (1)
-
-
Commonwealth of Independent States
-
Russian Federation
-
Arkhangelsk Russian Federation
-
Franz Josef Land (1)
-
Novaya Zemlya (1)
-
-
Krasnoyarsk Russian Federation
-
Severnaya Zemlya (1)
-
Taymyr Dolgan-Nenets Russian Federation
-
Taymyr Peninsula (1)
-
-
-
Russian Arctic
-
Franz Josef Land (1)
-
Novaya Zemlya (1)
-
Severnaya Zemlya (1)
-
-
-
Urals
-
Novaya Zemlya (1)
-
-
West Siberia
-
Severnaya Zemlya (1)
-
-
-
Europe
-
Alps
-
Eastern Alps
-
Austroalpine Zone (1)
-
-
Western Alps (1)
-
-
Arkhangelsk Russian Federation
-
Franz Josef Land (1)
-
Novaya Zemlya (1)
-
-
Pyrenees (2)
-
Southern Europe
-
Greece
-
Greek Macedonia (1)
-
Hellenides (1)
-
-
Iberian Peninsula
-
Central Iberian Zone (1)
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Iberian Massif (2)
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Ossa-Morena Zone (2)
-
Portugal
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Evora Portugal (1)
-
-
Spain
-
Basque Provinces Spain (1)
-
Galicia Spain
-
Ordenes Complex (1)
-
-
-
-
Italy
-
Abruzzi Italy (1)
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Apennines
-
Northern Apennines (1)
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Southern Apennines (1)
-
-
Apulia Italy
-
Gargano (1)
-
-
Basilicata Italy (1)
-
Calabria Italy (1)
-
Campania Italy (1)
-
Liguria Italy (1)
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Piemonte Italy
-
Lanzo Massif (1)
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Turin Italy (1)
-
-
Sesia-Lanzo Zone (1)
-
Tuscany Italy (1)
-
-
Macedonia
-
Greek Macedonia (1)
-
-
Vardar Zone (1)
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Yugoslavia (1)
-
-
Variscides (2)
-
Western Europe
-
France
-
Aquitaine Basin (1)
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Armorican Massif (3)
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Brittany (1)
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Cantal France (1)
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Central Massif (2)
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Hautes-Pyrenees France
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Orne France
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Mortagne France (1)
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Paris Basin (1)
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Ireland
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Mayo Ireland (1)
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Tipperary Ireland (1)
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-
United Kingdom
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English Channel Islands (1)
-
Great Britain
-
Scotland
-
Dundee Scotland (1)
-
Firth of Clyde (1)
-
Glasgow Scotland (1)
-
Great Glen Fault (4)
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Moine thrust zone (3)
-
Orkney Islands (1)
-
Scottish Highlands (2)
-
Shetland Islands (1)
-
-
Wales
-
Anglesey Wales (1)
-
-
-
-
-
-
Fairweather Fault (1)
-
Franklin Mountains (1)
-
Front Range (1)
-
Highland Boundary Fault (2)
-
Indian Ocean
-
Andaman Sea (2)
-
Red Sea
-
Gulf of Suez (1)
-
-
Timor Sea (1)
-
-
Loch Lomond (1)
-
Maritimes Basin (2)
-
Mediterranean region (1)
-
Mediterranean Sea
-
West Mediterranean
-
Alboran Sea (1)
-
-
-
Mexico
-
Baja California (1)
-
Baja California Sur Mexico (1)
-
Guerrero Mexico (1)
-
Guerrero Terrane (1)
-
Nuevo Leon Mexico (1)
-
Oaxaca Mexico (1)
-
Sierra Madre Oriental (1)
-
Trans-Mexican volcanic belt (1)
-
-
North America
-
Appalachians
-
Blue Ridge Province (1)
-
Central Appalachians (1)
-
Northern Appalachians (5)
-
Piedmont (1)
-
Southern Appalachians (2)
-
-
Basin and Range Province
-
Great Basin (2)
-
-
Canadian Shield
-
Churchill Province (2)
-
Grenville Province (1)
-
Slave Province (3)
-
Superior Province
-
Abitibi Belt (2)
-
Kapuskasing Zone (3)
-
Pontiac Subprovince (1)
-
Quetico Belt (2)
-
Wabigoon Belt (1)
-
-
-
Great Plains
-
Northern Great Plains (1)
-
-
Grenville Front (1)
-
Gulf Coastal Plain (1)
-
Intermontane Belt (1)
-
North American Cordillera
-
Canadian Cordillera (7)
-
-
Omineca Belt (1)
-
Rocky Mountain Trench (1)
-
Rocky Mountains
-
Canadian Rocky Mountains (4)
-
U. S. Rocky Mountains (1)
-
-
Slide Mountain Terrane (1)
-
Sweetgrass Arch (1)
-
Tintina Fault (2)
-
Yukon-Tanana Terrane (2)
-
-
North Island (1)
-
Northern Highlands (2)
-
Oceania
-
Melanesia
-
Vanuatu (1)
-
-
Micronesia
-
Caroline Islands
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Palau (1)
-
-
-
-
Orcadian Basin (1)
-
Pacific Coast (1)
-
Pacific Ocean
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East Pacific
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Cocos Ridge (1)
-
Northeast Pacific
-
Middle America Trench (1)
-
-
-
North Pacific
-
Bering Sea (1)
-
Northeast Pacific
-
Middle America Trench (1)
-
-
Northwest Pacific
-
Philippine Sea (1)
-
-
-
South Pacific
-
Southwest Pacific
-
Hikurangi Trough (1)
-
-
-
West Pacific
-
Northwest Pacific
-
Philippine Sea (1)
-
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Southwest Pacific
-
Hikurangi Trough (1)
-
-
-
-
Pacific region (1)
-
Queen Charlotte Fault (1)
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Rainy Lake (1)
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Red Sea region (1)
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Russian Platform (1)
-
San Andreas Fault (3)
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San Juan Islands (2)
-
Sierra Nevada (1)
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Sinai (1)
-
South America
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Andes
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Northern Andes (1)
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Venezuelan Andes (1)
-
-
Argentina
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Pampean Mountains (1)
-
-
Brazil
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Borborema (1)
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Borborema Province (1)
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Paraiba Brazil (1)
-
-
Peru (1)
-
Venezuela
-
Trujillo Venezuela (1)
-
Venezuelan Andes (1)
-
-
-
Sydney Basin (1)
-
Tancheng-Lujiang fault zone (1)
-
United States
-
Alaska
-
Aleutian Islands
-
Adak Island (1)
-
Unalaska Island (1)
-
-
Alexander Archipelago (1)
-
-
Atlantic Coastal Plain (1)
-
Bronson Hill Anticlinorium (1)
-
California
-
Central California (1)
-
Fresno County California (1)
-
Garlock Fault (1)
-
Kern County California (1)
-
Los Angeles County California (2)
-
Monterey County California
-
Parkfield California (1)
-
-
San Benito County California (1)
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San Gabriel Mountains (1)
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San Joaquin Valley (1)
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Southern California (2)
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Ventura County California (1)
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Colorado
-
Larimer County Colorado (1)
-
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Eastern California shear zone (1)
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Florida (1)
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Great Basin (2)
-
Maine
-
Hancock County Maine (1)
-
Norumbega fault zone (1)
-
Penobscot County Maine (1)
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Washington County Maine (1)
-
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Midcontinent (1)
-
Minnesota
-
Koochiching County Minnesota (1)
-
Saint Louis County Minnesota (1)
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Montana (1)
-
Nevada
-
Esmeralda County Nevada
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Silver Peak Mountains (2)
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Mineral County Nevada (1)
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New England (1)
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New Hampshire (1)
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New Mexico
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Grant County New Mexico (1)
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North Carolina (1)
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Reading Prong (1)
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South Carolina (1)
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Texas
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Culberson County Texas
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Van Horn Texas (1)
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El Paso County Texas (1)
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Hudspeth County Texas (1)
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U. S. Rocky Mountains (1)
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Walker Lane (5)
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Washington
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San Juan County Washington (2)
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Western U.S. (1)
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commodities
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metal ores
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bismuth ores (1)
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copper ores (1)
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gold ores (5)
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lead-zinc deposits (1)
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uranium ores (1)
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mineral deposits, genesis (5)
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mineral exploration (1)
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mineral resources (1)
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oil and gas fields (1)
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petroleum (4)
-
-
elements, isotopes
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halogens
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chlorine
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chloride ion (1)
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hydrogen
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-
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isotope ratios (4)
-
isotopes
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radioactive isotopes
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Pb-206/Pb-204 (1)
-
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stable isotopes
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D/H (1)
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Nd-144/Nd-143 (2)
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O-18/O-16 (2)
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Pb-206/Pb-204 (1)
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Pb-207/Pb-206 (1)
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S-34/S-32 (2)
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Sr-87/Sr-86 (1)
-
-
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metals
-
alkaline earth metals
-
barium (1)
-
strontium
-
Sr-87/Sr-86 (1)
-
-
-
lead
-
Pb-206/Pb-204 (1)
-
Pb-207/Pb-206 (1)
-
-
rare earths
-
neodymium
-
Nd-144/Nd-143 (2)
-
-
-
-
oxygen
-
O-18/O-16 (2)
-
-
sulfur
-
S-34/S-32 (2)
-
-
-
fossils
-
Invertebrata
-
Mollusca
-
Cephalopoda
-
Ammonoidea (1)
-
-
-
Protista
-
Foraminifera (1)
-
-
-
microfossils (1)
-
-
geochronology methods
-
Ar/Ar (11)
-
exposure age (1)
-
K/Ar (3)
-
paleomagnetism (14)
-
Rb/Sr (6)
-
thermochronology (1)
-
U/Pb (15)
-
-
geologic age
-
Cenozoic
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Quaternary
-
Pleistocene (2)
-
upper Quaternary (1)
-
-
Tertiary
-
lower Tertiary (3)
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Neogene
-
Etchegoin Formation (1)
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Miocene
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upper Miocene (2)
-
-
Pliocene (4)
-
-
Paleogene
-
Eocene
-
upper Eocene (1)
-
-
Oligocene (1)
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Paleocene
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middle Paleocene (1)
-
-
-
-
upper Cenozoic (2)
-
-
Dalradian (3)
-
Mesozoic
-
Cretaceous
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Middle Cretaceous (1)
-
Upper Cretaceous (5)
-
-
Jurassic
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Ladner Group (1)
-
Lower Jurassic
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middle Liassic (1)
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Pliensbachian (1)
-
-
-
Triassic
-
Lower Triassic
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Permian-Triassic boundary (1)
-
-
Takla Group (1)
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-
-
Paleozoic
-
Cambrian
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Lower Cambrian (1)
-
-
Carboniferous
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Lower Carboniferous
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Dinantian (3)
-
-
Mississippian
-
Lower Mississippian
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Tournaisian (2)
-
-
Middle Mississippian
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Visean (1)
-
-
-
Namurian (2)
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Pennsylvanian (1)
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Upper Carboniferous
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Westphalian (1)
-
-
-
Devonian
-
Lower Devonian
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Emsian (1)
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Lochkovian (1)
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Pragian (1)
-
-
Old Red Sandstone (2)
-
-
lower Paleozoic (2)
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middle Paleozoic (2)
-
Ordovician
-
Upper Ordovician (1)
-
-
Permian
-
Lower Permian (1)
-
Upper Permian
-
Permian-Triassic boundary (1)
-
-
-
Silurian
-
Lower Silurian
-
Llandovery (1)
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Wenlock (2)
-
-
Upper Silurian
-
Ludlow (1)
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Pridoli (1)
-
-
-
-
Precambrian
-
Archean
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Mesoarchean (2)
-
Neoarchean
-
Amitsoq Gneiss (1)
-
-
-
Carrizo Mountain Formation (1)
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Hazel Formation (1)
-
Hecla Hoek Formation (1)
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upper Precambrian
-
Proterozoic
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Mesoproterozoic (1)
-
Neoproterozoic
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Tonian (1)
-
-
Paleoproterozoic
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Birimian (1)
-
-
Windermere System (1)
-
-
-
-
-
igneous rocks
-
igneous rocks
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hypabyssal rocks (1)
-
plutonic rocks
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anorthosite (1)
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appinite (1)
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diabase (1)
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diorites (1)
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gabbros (2)
-
granites
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aplite (1)
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A-type granites (2)
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rapakivi (1)
-
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granodiorites (1)
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lamprophyres
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minette (1)
-
-
pegmatite (3)
-
ultramafics (3)
-
-
volcanic rocks
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andesites (1)
-
basalts (3)
-
pyroclastics
-
ash-flow tuff (1)
-
-
-
-
ophiolite (7)
-
-
metamorphic rocks
-
metamorphic rocks
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amphibolites (2)
-
gneisses
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orthogneiss (1)
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paragneiss (1)
-
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granulites (3)
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metaigneous rocks
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metagabbro (2)
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metarhyolite (1)
-
serpentinite (1)
-
-
metaplutonic rocks (2)
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metasedimentary rocks
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metachert (1)
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metagraywacke (1)
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paragneiss (1)
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-
metasomatic rocks
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serpentinite (1)
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-
metavolcanic rocks (3)
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migmatites (2)
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mylonites
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pseudotachylite (1)
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phyllites (1)
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phyllonites (1)
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quartzites (1)
-
schists
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greenstone (1)
-
-
-
ophiolite (7)
-
turbidite (2)
-
-
minerals
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oxides
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hematite (1)
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iron oxides (1)
-
magnetite (1)
-
-
silicates
-
chain silicates
-
amphibole group
-
clinoamphibole
-
hornblende (2)
-
-
-
-
framework silicates
-
feldspar group
-
alkali feldspar (1)
-
-
-
orthosilicates
-
nesosilicates
-
titanite group
-
titanite (1)
-
-
zircon group
-
zircon (12)
-
-
-
-
sheet silicates
-
mica group
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biotite (1)
-
muscovite (3)
-
-
-
-
-
Primary terms
-
absolute age (26)
-
Africa
-
Limpopo Belt (1)
-
North Africa
-
Algeria (1)
-
Atlas Mountains (1)
-
Egypt
-
Nile Delta (1)
-
Sinai Egypt (1)
-
-
Morocco
-
Rif (1)
-
-
Tell (1)
-
-
Reguibat Ridge (1)
-
Southern Africa
-
Barberton greenstone belt (1)
-
Kaapvaal Craton (1)
-
Namibia
-
Kaoko Belt (1)
-
-
-
West Africa
-
Guinea (1)
-
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The role of crustal-scale shear zones in SW Gondwana consolidation – transatlantic correlation
Abstract We present the first correlation between South American and African shear zones based on a reconstruction model of SW Gondwana continental crust, correlating 57 Brasiliano–Pan-African crustal-scale shear zones that sutured this palaeocontinent at c. 500 Ma. The final amalgamation and consolidation of the SW Gondwana continental crust were attained by an anticlockwise rotation of three cratons (Kalahari, Angola and São Francisco) in relation to the clockwise rotation of the Río de la Plata Craton in the Early Paleozoic. These relative movements were accommodated by transcurrent shear zones active from 585 to 500 Ma within the Pan-African–Brasiliano belts that surround these cratons. This kinematic interaction resulted in the initiation of a long-term active margin starting with the Cambrian Pampean orogeny and ending with the Permian–Triassic Gondwanide orogeny.
Abstract The San Juan–southern Gulf Islands Archipelago of Washington State, USA and western Canada is located on the upper plate of the Cascadia subduction zone, in the forearc between the trench and volcanic arc. Onland and island investigations show many faults within the region that primarily represent old, inactive faults associated with transport, subduction and accretion of tectonostratigraphic terranes. However, until recently little geologic investigation and mapping have been done in the offshore. From these narrow straits, channels and sounds we have collected and interpreted high-resolution multibeam echosounder bathymetric data, 3.5 kHz sub-bottom and Huntec seismic-reflection profiles, and piston-cores to identify and date recently active faults. Previous studies by us focused on the earlier recognized active Devils Mountain fault zone that bounds the southern part of the Archipelago and the recently reported newly mapped active Skipjack Island fault zone that bounds the northern part. These transcurrent fault zones appear to be deforming and rotating the Archipelago. We concentrate on the unique deformation occurring within the seaways to determine the relationship and styles of faulting associated with these active bounding fault zones and relate the fault geometry and kinematics to one other subduction complex, the New Hebrides island arc of Vanuatu.
ABSTRACT Three Silurian basin fills, the Llandovery–Wenlock Croagh Patrick and Killary Harbour–Joyce Country successions and the Ludlow–Pridoli Louisburgh–Clare Island succession, overstep the tectonic contacts between elements of the Grampian (Taconic) accretionary history of the Caledonian-Appalachian orogeny in western Ireland. New U-Pb detrital zircon data from lower strata of these Silurian rocks provide insight into basin evolution and paleogeography. The shallow-marine Croagh Patrick succession unconformably overlies the Clew Bay Complex and the northern part of the Ordovician South Mayo Trough. Two samples have zircon populations dominated by Proterozoic grains typical of the Laurentian margin, with few younger grains. Up to 13% of the grains form a cluster at ca. 950–800 Ma, which is younger than known Grenville magmatism on the local Laurentian margin and older than known magmatism from Iapetan rifting; these may be recycled grains from Dalradian strata, derived from distal Tonian intrusions. The Killary Harbour–Joyce Country succession overlies the structural contact between the Lough Nafooey arc and the Connemara Dalradian block and records a transgressive-regressive cycle. Four samples of the Lough Mask Formation show contrasting age spectra. Two samples from east of the Maam Valley fault zone, one each from above Dalradian and Nafooey arc basement, are dominated by Proterozoic grains with ages typical of a Laurentian or Dalradian source, likely in north Mayo. One sample also includes 8% Silurian grains. Two samples from west of the fault overlie Dalradian basement and are dominated by Ordovician grains. Circa 450 Ma ages are younger than any preserved Ordovician rocks in the region and are inferred to represent poorly preserved arc fragments that are exposed in northeastern North America. Cambrian to late Neoproterozoic grains in association with young Ordovician ages suggest derivation from a peri-Gondwanan source in the late stages of Iapetus closure. The Louisburgh–Clare Island succession comprises terrestrial red beds. It unconformably overlies the Clew Bay Complex on Clare Island and is faulted against the Croagh Patrick succession on the mainland. The Strake Banded Formation yielded an age spectrum dominated by Proterozoic Laurentian as well as Ordovician–Silurian ages. Although the basin formed during strike-slip deformation along the Laurentian margin in Ireland and Scotland, sediment provenance is consistent with local Dalradian sources and contemporaneous volcanism. Our results support ideas that Ganderian continental fragments became part of Laurentia prior to the full closure of the Iapetus Ocean.
ABSTRACT The Baie Verte Line in western Newfoundland marks a suture zone between (1) an upper plate represented by suprasubduction zone oceanic crust (Baie Verte oceanic tract) and the trailing continental Notre Dame arc, with related upper-plate rocks built upon the Dashwoods terrane; and (2) a lower plate of Laurentian margin metasedimentary rocks with an adjoining ocean-continent transition zone (Birchy Complex). The Baie Verte oceanic tract formed during closure of the Taconic seaway in a forearc position and started to be obducted onto the Laurentian margin between ca. 485 and 476 Ma (early Taconic event), whereas the Birchy Complex, at the leading edge of the Laurentian margin, was subducted to maximum depths as calculated by pseudosection techniques (6.7–11.2 kbar, 315–560 °C) by ca. 467–460 Ma, during the culmination of the Taconic collision between the trailing Notre Dame arc and Laurentia, and it cooled isobarically to 9.2–10.0 kbar and 360–450 °C by 454–449 Ma (M 1 ). This collisional wedge progressively incorporated upper-plate Baie Verte oceanic tract rocks, with remnants preserved in M 1 high-pressure, low-temperature greenschist-facies rocks (4.8–8.0 kbar, 270–340 °C) recording typical low metamorphic gradients (10–14 °C/km). Subsequently, the early Taconic collisional wedge was redeformed and metamorphosed during the final stages of the Taconic cycle. We relate existing and new 40 Ar/ 39 Ar ages between 454 and 439 Ma to a late Taconic reactivation of the structurally weak suture zone. The Taconic wedge on both sides of the Baie Verte suture zone was subsequently strongly shortened (D 2 ), metamorphosed (M 2 ), and intruded by a voluminous suite of plutons during the Salinic orogenic cycle. Calculated low- to medium-pressure, low-temperature M 2 conditions in the Baie Verte oceanic tract varied at 3.0–5.0 kbar and 275–340 °C, with increased metamorphic gradients of ~17–25 °C/km during activity of the Notre Dame arc, and correlate with M 2 assemblages in the Birchy Complex. These conditions are associated with existing Salinic S 2 white mica 40 Ar/ 39 Ar ages of ca. 432 Ma in a D 2 transpressional shear zone and synkinematic intrusions of comparable age. A third metamorphic event (M 3 ) was recorded during the Devonian with calculated low-pressure, low-temperature conditions of 3.2–3.8 kbar and 315–330 °C under the highest metamorphic gradients (23–30 °C/km) and associated with Devonian–early Carboniferous isotopic ages as young as 356 ± 5 Ma. The youngest ages are related to localized extension associated with a large-scale transtensional zone, which reused parts of the Baie Verte Line suture zone. Extension culminated in the formation of a Middle to Late Devonian Neoacadian metamorphic core complex in upper- and lower-plate rocks by reactivation of Baie Verte Line tectonites formed during the Taconic and Salinic cycles. The Baie Verte Line suture zone is a collisional complex subjected to repeated, episodic structural reactivation during the Late Ordovician Taconic 3, Silurian Salinic, and Early–Late Devonian Acadian/Neoacadian orogenic cycles. Deformation appears to have been progressively localized in major fault zones associated with earlier suturing. This emphasizes the importance of existing zones of structural weakness, where reactivation took place in the hinterland during successive collision events.
Young and Old Granulites: A Volatile Connection
Timing of strain partitioning and magmatism in the Scottish Scandian collision, evidence from the high Ba–Sr Orkney granite complex
Alternating crustal architecture in West Iberia: a review of its significance in the context of NE Atlantic rifting
Geophysical Signature of the NICO Au-Co-Bi-Cu Deposit and Its Iron Oxide-Alkali Alteration System, Northwest Territories, Canada
The Mesozoic of Nuevo Leon, Mexico: An Ancient Extension of the Gulf of Mexico. Paleogeography and Tectonics
Abstract The Mesozoic of Nuevo Leon is composed of more than 10,000 m of sedimentary rocks displaying abrupt physical changes and containing abundant planktonic foraminifera, allowing precise chronostrati-graphic determinations. This succession has been deposited in the western extension of the ancestral Gulf of Mexico (Mexican Sea). Its paleogeographic setting corresponds to the oblique subduction of the Kula-Far-allon plate under the North American plate. Active oblique subduction of the western margin of Mexico has resulted in the structural features of the Mesozoic sedimentary cover, forming a folded belt made of an intricate array of mountain ranges corresponding to the Nuevo Leones Cordillera characterized by: (1) kilomet-ric-scale anticlinal ridges and narrow synclinal valleys of the Jurassic-Cretaceous sedimentary cover commonly displaying box (fan-shaped) folds; (2) a well-developed pattern of en echelon anticlinal folds; (3) juxtaposition of tectonostratigraphic domains; (4) asymmetrical, overturned, doubly plunging anticlines evolving into faulted anticlines; (5) disrupted, long and sinuous fold trends; (6) lack of large horizontal displacement due to overthrusting; (7) folding being predominant over faulting; (8) local thrusting with opposite vergence; and (9) lack of volcanism and regional metamorphism. Those features are the result of transpressional tectonics since the mid-Jurassic including a greater basement involvement in the tectonic deformation. Analysis of the megastructures exposed in the region using SIR-A and LANDSAT imagery of northeast Mexico revealed that the megastructures of the Mesozoic Cordillera between parallels 22°00' and 26°00' and meridians 99° 00’ and 101°00’ can be referred to deformation of the thin sedimentary cover above transcurrent faults following the morphological pattern of the lab experiment by Odonne and Vialon. The folding styles of the Nuevo Leones Cordillera were analyzed in light of tectonic transpression and wrench-fault tectonics driven by transcurrent faults in the basement as established by Harland, Lowell, and Beck, resulting in the recognition of subsurface faults in the basement. We associate the geometric arrangement of the megastructural trends to sense of displacement of strike-slip (transcurrent) faults and fold patterns as demonstrated by Odonne and Vialon (1983) and the well-known strike-slip tectonic setting of New Zealand as described by Bishop (1967).
Analysis of the fault pattern in the Lower Lanzo Valley (italian Western Alps): a multi-scale integrated approach
Seismic crustal deformation in the Southern Apennines (Italy)
The Grenville–Sveconorwegian orogen in the high Arctic
The Northeast Arran Trough, the Corrie conundrum and the Highland Boundary Fault in the Firth of Clyde, SW Scotland
A high-precision U–Pb age constraint on the Rhynie Chert Konservat-Lagerstätte: time scale and other implications
Tectonic models proposed for the Limpopo Complex: Mutual compatibilities and constraints
Published models for the Limpopo Complex as a whole include Neoarchean (ca. 2.65 Ga) continent-continent collision, Turkic-type terrane accretion, and plume-related gravitational redistribution within the crust. Hypotheses proposed for parts of the complex are Paleoproterozoic (ca. 2.0 Ga) dextral transpression for the Central Zone, westward emplacement of the Central Zone as a giant nappe, and gravitational redistribution scenarios. In this chapter these models and hypotheses are reviewed and tested against new data from geophysics (chiefly seismics and gravity), isotope geochemistry (mainly Sm-Nd and Lu-Hf data), geochronology, and petrology. Among the whole-complex models, the plume-related gravitational redistribution model and the Turkic-type terrane accretion model do not satisfy the constraints. The Neoarchean collision model remains as a viable working hypothesis, whereby (in contrast to published versions) the Zimbabwe Craton appears to be the overriding plate, with the Northern Marginal and Central Zones of the Limpopo Complex as its (possibly Andean-type) active margin and shelf, respectively. Of the partial models, gravitational redistribution in the context of crustal thickening is compatible with Neoarchean collision and can explain features at the Complex–Kaapvaal Craton boundary. Paleoproterozoic dextral transpression in the Central Zone can be superimposed on Neoarchean collision, provided that it does not itself entail a continent collision. The Paleoproterozoic metamorphism is characterized by near-isobaric prograde paths, which (along with combined teleseismic and gravity data) suggest magmatic underplating. This could be related to the Bushveld Complex, and may have weakened the crust, leading to the focusing of regional strain into transcurrent movement in the Central Zone.