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NARROW
GeoRef Subject
-
all geography including DSDP/ODP Sites and Legs
-
Africa
-
North Africa
-
Algeria (1)
-
Libya (1)
-
-
Southern Africa
-
Karoo Basin (1)
-
South Africa (1)
-
-
-
Arctic Ocean
-
Barents Sea (9)
-
Lomonosov Ridge (1)
-
Norwegian Sea
-
Haltenbanken (38)
-
Jan Mayen Ridge (2)
-
More Basin (27)
-
Voring Basin (37)
-
Voring Plateau (26)
-
-
-
Arctic region
-
Greenland
-
East Greenland (2)
-
-
Jan Mayen (1)
-
Svalbard
-
Spitsbergen (2)
-
-
-
Asia
-
Far East
-
Borneo
-
Kalimantan Indonesia
-
Mahakam Delta (1)
-
-
-
Indonesia
-
Kalimantan Indonesia
-
Mahakam Delta (1)
-
-
-
-
-
Atlantic Ocean
-
Equatorial Atlantic (1)
-
North Atlantic
-
Blake-Bahama Outer Ridge (1)
-
Faeroe-Shetland Basin (7)
-
Gulf of Mexico (1)
-
Irminger Basin (1)
-
Jeanne d'Arc Basin (1)
-
Labrador Sea
-
Labrador Shelf (1)
-
-
North Sea
-
East Shetland Basin (1)
-
Norwegian Channel (1)
-
Skagerrak (1)
-
Troll Field (2)
-
Viking Graben (6)
-
-
Northeast Atlantic (11)
-
Northwest Atlantic (2)
-
Rockall Trough (5)
-
-
-
Atlantic Ocean Islands
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Faeroe Islands (2)
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Shetland Islands (1)
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Atlantic region (1)
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Australasia
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Australia
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Eromanga Basin (1)
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Queensland Australia (1)
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Bear Island (1)
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Caledonides (48)
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Canada
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Newfoundland and Labrador
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Labrador (1)
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Western Canada
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British Columbia
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Central Graben (4)
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Europe
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Carpathians
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Central Europe
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Germany
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Fennoscandia (2)
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Southern Europe
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Iberian Peninsula
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Spain
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Romania
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Transylvania
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Western Europe
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France
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Scandinavia
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Denmark
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Koli Nappe (3)
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Norway
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Folldal Norway (1)
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Nordland Norway
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Lofoten Islands (13)
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Nord-Trondelag Norway (2)
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Northern Norway (8)
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Oslo Norway (1)
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Soroy (1)
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Sor-Trondelag Norway
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Trondheim Norway (12)
-
-
Southern Norway (3)
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Telemark Norway (1)
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Troms Norway
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Trondelag (8)
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Western Gneiss region (25)
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United Kingdom
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Great Britain
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England
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Yorkshire England (1)
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Scotland
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Hebrides
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Rhum (1)
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Highland region Scotland
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Inverness-shire Scotland
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Rhum (1)
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Shetland Islands (1)
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Wales (1)
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Grand Banks (1)
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Indian Ocean
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Great Australian Bight (1)
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International Ocean Discovery Program (1)
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Malay Archipelago
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Borneo
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Mahakam Delta (1)
-
-
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-
ODP Site 642 (9)
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Oslo Rift (1)
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Pacific Ocean
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East Pacific
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East Pacific Rise (1)
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Northeast Pacific (2)
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North Pacific
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Northeast Pacific (2)
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Northwest Pacific
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South China Sea (1)
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South Pacific
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Tasman Sea (1)
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West Pacific
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Northwest Pacific
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Sierra Nevada (1)
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South America
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Southern Ocean
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Storegga Slide (4)
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commodities
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elements, isotopes
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chemical ratios (3)
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halogens
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hydrogen (2)
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isotope ratios (6)
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isotopes
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C-14 (1)
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Pb-206/Pb-204 (1)
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Pb-207/Pb-204 (1)
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Pb-208/Pb-204 (1)
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U-238/Pb-204 (1)
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stable isotopes
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C-13/C-12 (3)
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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-204 (1)
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Pb-208/Pb-204 (1)
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Sr-87/Sr-86 (2)
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Lu/Hf (3)
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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-204 (1)
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alkali metals
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potassium (1)
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alkaline earth metals
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barium (1)
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calcium (1)
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magnesium (1)
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strontium
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Sr-87/Sr-86 (2)
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aluminum (1)
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chromium (1)
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germanium (1)
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iron (3)
-
lead
-
Pb-206/Pb-204 (1)
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Pb-207/Pb-204 (1)
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Pb-208/Pb-204 (1)
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U-238/Pb-204 (1)
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-
manganese (1)
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mercury (1)
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nickel (1)
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niobium (1)
-
platinum group
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iridium (1)
-
-
rare earths
-
neodymium
-
Nd-144/Nd-143 (2)
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-
scandium (1)
-
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tin (1)
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titanium (1)
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zirconium (1)
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nitrogen (1)
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oxygen
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O-18/O-16 (2)
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phosphorus (1)
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Invertebrata
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Porifera (1)
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Protista
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Foraminifera (2)
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microfossils (14)
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Dinoflagellata (5)
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Plantae
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diatoms (4)
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Rhodophyta
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Corallinaceae (1)
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thallophytes (1)
-
-
geochronology methods
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Ar/Ar (10)
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fission-track dating (1)
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K/Ar (1)
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Lu/Hf (3)
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paleomagnetism (1)
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Rb/Sr (3)
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Re/Os (1)
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sclerochronology (1)
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Sm/Nd (6)
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tephrochronology (1)
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thermochronology (3)
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U/Pb (19)
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-
geologic age
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Cenozoic
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Quaternary
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Holocene
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lower Holocene (2)
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Pleistocene
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lower Pleistocene (1)
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middle Pleistocene
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Elsterian (1)
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Saalian (1)
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upper Pleistocene
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Eemian (1)
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upper Weichselian
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Younger Dryas (1)
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-
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upper Quaternary
-
Brunhes Chron (1)
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-
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Tertiary
-
lower Tertiary (6)
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Neogene
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Capistrano Formation (1)
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Cimmerian (1)
-
lower Pliocene (2)
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upper Pliocene (1)
-
-
-
Paleogene
-
Eocene
-
lower Eocene (1)
-
-
Oligocene
-
Fontainebleau Sandstone (1)
-
-
Paleocene
-
lower Paleocene
-
Danian (3)
-
-
upper Paleocene (3)
-
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Paleocene-Eocene Thermal Maximum (3)
-
-
-
upper Cenozoic (2)
-
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Coal Measures (1)
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Mesozoic
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Cretaceous
-
Lower Cretaceous (6)
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Middle Cretaceous (1)
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Upper Cretaceous
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Campanian
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lower Campanian (1)
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Cenomanian (1)
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Coniacian (1)
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Maestrichtian (2)
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Senonian (3)
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Turonian (1)
-
-
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Jurassic
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Heather Formation (1)
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Lower Jurassic
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lower Liassic (1)
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Sinemurian (1)
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Middle Jurassic
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Bajocian
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Brent Group (2)
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Upper Jurassic
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Kimmeridgian (1)
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Volgian (1)
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Statfjord Formation (1)
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Triassic
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Lower Triassic
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Griesbachian (1)
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Permian-Triassic boundary (1)
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Middle Triassic
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Anisian (1)
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Upper Triassic
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Carnian (1)
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Norian (1)
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-
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upper Mesozoic (1)
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Paleozoic
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Cambrian (4)
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Carboniferous (3)
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Devonian
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Lower Devonian (1)
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Old Red Sandstone (1)
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Upper Devonian (1)
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lower Paleozoic (2)
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middle Paleozoic (2)
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Ordovician
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Lower Ordovician (1)
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Middle Ordovician (2)
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Upper Ordovician (1)
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Permian
-
Upper Permian
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Permian-Triassic boundary (1)
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Zechstein (1)
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-
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Silurian
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Upper Silurian (1)
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-
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Precambrian
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Archean (2)
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Lewisian Complex (1)
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upper Precambrian
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Proterozoic
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Mesoproterozoic (4)
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Neoproterozoic
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Cryogenian (2)
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Ediacaran (1)
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Tonian (1)
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Paleoproterozoic (2)
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-
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igneous rocks
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igneous rocks
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plutonic rocks
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anorthosite (1)
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diabase (1)
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diorites
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quartz diorites (1)
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gabbros (7)
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granites
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aplite (1)
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I-type granites (1)
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granodiorites (2)
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-
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peridotites
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garnet peridotite (6)
-
-
pyroxenite
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websterite (3)
-
-
-
-
porphyry (2)
-
volcanic rocks
-
basalts
-
flood basalts (1)
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mid-ocean ridge basalts (1)
-
shoshonite (1)
-
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dacites (1)
-
pyroclastics
-
hyaloclastite (2)
-
-
rhyodacites (1)
-
-
-
ophiolite (2)
-
-
metamorphic rocks
-
metamorphic rocks
-
amphibolites (2)
-
cataclasites (2)
-
eclogite (10)
-
garnetite (1)
-
gneisses
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augen gneiss (2)
-
granite gneiss (1)
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orthogneiss (3)
-
-
granulites (1)
-
metaigneous rocks
-
metagabbro (1)
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metagranite (1)
-
metaperidotite (1)
-
-
metasedimentary rocks
-
meta-arkose (1)
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metapelite (1)
-
-
metasomatic rocks
-
skarn (1)
-
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metavolcanic rocks (1)
-
migmatites (1)
-
mylonites
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pseudotachylite (3)
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ultramylonite (1)
-
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quartzites (2)
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schists
-
greenschist (1)
-
-
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ophiolite (2)
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turbidite (3)
-
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minerals
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carbonates
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hydrates (1)
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minerals (4)
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native elements
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diamond
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microdiamond (6)
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graphite (1)
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oxides
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corundum (1)
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hematite (1)
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rutile (4)
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phosphates
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xenotime (1)
-
-
silicates
-
chain silicates
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amphibole group
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clinoamphibole
-
hornblende (2)
-
-
-
pyroxene group
-
clinopyroxene
-
augite (1)
-
-
orthopyroxene (4)
-
-
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feldspathoids (1)
-
framework silicates
-
feldspar group
-
alkali feldspar
-
K-feldspar (2)
-
-
plagioclase
-
albite (1)
-
-
-
nepheline group
-
kalsilite (1)
-
-
silica minerals
-
coesite (1)
-
jasper (1)
-
opal
-
opal-A (3)
-
opal-CT (2)
-
-
quartz (7)
-
-
sodalite group
-
genthelvite (1)
-
helvite (1)
-
-
-
magnesian silicates (1)
-
orthosilicates
-
nesosilicates
-
andalusite (1)
-
garnet group
-
majorite (4)
-
-
kyanite (3)
-
olivine group
-
olivine (2)
-
-
sillimanite (1)
-
titanite group
-
titanite (1)
-
-
zircon group
-
zircon (15)
-
-
-
sorosilicates
-
epidote group
-
clinozoisite (1)
-
-
-
-
sheet silicates
-
chlorite group
-
chlorite (3)
-
-
clay minerals
-
kaolinite (1)
-
smectite (4)
-
-
illite (5)
-
margarite (1)
-
mica group
-
biotite (1)
-
celadonite (1)
-
muscovite (5)
-
phlogopite (2)
-
-
serpentine group
-
serpentine (1)
-
-
-
-
sulfates
-
gypsum (1)
-
-
sulfides
-
galena (1)
-
genthelvite (1)
-
helvite (1)
-
iron sulfides (2)
-
nickel sulfides (1)
-
pyrite (1)
-
sphalerite (1)
-
-
-
Primary terms
-
absolute age (34)
-
Africa
-
North Africa
-
Algeria (1)
-
Libya (1)
-
-
Southern Africa
-
Karoo Basin (1)
-
South Africa (1)
-
-
-
Arctic Ocean
-
Barents Sea (9)
-
Lomonosov Ridge (1)
-
Norwegian Sea
-
Haltenbanken (38)
-
Jan Mayen Ridge (2)
-
More Basin (27)
-
Voring Basin (37)
-
Voring Plateau (26)
-
-
-
Arctic region
-
Greenland
-
East Greenland (2)
-
-
Jan Mayen (1)
-
Svalbard
-
Spitsbergen (2)
-
-
-
Asia
-
Far East
-
Borneo
-
Kalimantan Indonesia
-
Mahakam Delta (1)
-
-
-
Indonesia
-
Kalimantan Indonesia
-
Mahakam Delta (1)
-
-
-
-
-
Atlantic Ocean
-
Equatorial Atlantic (1)
-
North Atlantic
-
Blake-Bahama Outer Ridge (1)
-
Faeroe-Shetland Basin (7)
-
Gulf of Mexico (1)
-
Irminger Basin (1)
-
Jeanne d'Arc Basin (1)
-
Labrador Sea
-
Labrador Shelf (1)
-
-
North Sea
-
East Shetland Basin (1)
-
Norwegian Channel (1)
-
Skagerrak (1)
-
Troll Field (2)
-
Viking Graben (6)
-
-
Northeast Atlantic (11)
-
Northwest Atlantic (2)
-
Rockall Trough (5)
-
-
-
Atlantic Ocean Islands
-
Faeroe Islands (2)
-
Shetland Islands (1)
-
-
Atlantic region (1)
-
Australasia
-
Australia
-
Eromanga Basin (1)
-
Queensland Australia (1)
-
-
-
bacteria (2)
-
biogeography (2)
-
bitumens (1)
-
Canada
-
Eastern Canada
-
Newfoundland and Labrador
-
Labrador (1)
-
-
-
Western Canada
-
British Columbia
-
Saanich Inlet (1)
-
-
-
-
carbon
-
C-13/C-12 (3)
-
C-14 (1)
-
organic carbon (2)
-
-
Cenozoic
-
Quaternary
-
Holocene
-
lower Holocene (2)
-
-
Pleistocene
-
lower Pleistocene (1)
-
Matuyama Chron (1)
-
middle Pleistocene
-
Elsterian (1)
-
-
Saalian (1)
-
upper Pleistocene
-
Eemian (1)
-
Weichselian
-
upper Weichselian
-
Younger Dryas (1)
-
-
-
-
-
upper Quaternary
-
Brunhes Chron (1)
-
-
-
Tertiary
-
lower Tertiary (6)
-
Neogene
-
Capistrano Formation (1)
-
Miocene (1)
-
Pliocene
-
Cimmerian (1)
-
lower Pliocene (2)
-
upper Pliocene (1)
-
-
-
Paleogene
-
Eocene
-
lower Eocene (1)
-
-
Oligocene
-
Fontainebleau Sandstone (1)
-
-
Paleocene
-
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The influence of salt tectonics on the distribution of the Triassic Skagerrak Formation in the Ula Field, Norwegian North Sea
Submarine volcanism along shallow ridges did not drive Cryogenian cap carbonate formation
Long-term slope instability induced by the reactivation of mass transport complexes: An underestimated geohazard on the Norwegian continental margin
Quick clay monitoring using distributed acoustic sensing: A case study from Rissa, Norway
Structural evolution of the reactivated Møre–Trøndelag Fault Complex, Fosen Peninsula, Norway
Mid-Ordovician stratigraphy and volcanism in the Hølonda area, Scandinavian Caledonides: complex tectonomagmatic development following arc–continent collision near the Laurentian margin of Iapetus
Challenges and opportunities for hydrocarbon exploration within the Mesozoic sub-basalt plays of the Norwegian Atlantic Margin
Abstract The NE Atlantic volcanic rifted margins include vast underexplored basin areas neighbouring mature petroleum-producing regions. We appraise the cross-border prospectivity of the outer and central Faroe–Shetland, Møre and southern Vøring basins and present insights from extensive new 3D seismic surveys. Regional seismic surfaces are used to compile a cross-border seismic profile highlighting key discoveries from the UK Rosebank field in the SW to the Norwegian Ormen Lange field in the NE. Cretaceous to Paleocene reservoirs remain the main exploration focus seaward of the platform areas, and the presence of several large untested structures presents important exploration targets in the mid-Norway region. Improved imaging of the areas affected by Paleogene igneous rocks reveals major untested sub-basalt structures including some regions on the marginal highs where the basalt cover has been entirely removed by erosion, revealing sub-basalt stratigraphy and structures with pre-Cretaceous potential prospectivity. The influence of igneous rocks on both discovered and prospective hydrocarbon systems is discussed. Neogene sand injectite fields and Quaternary glacial sand bodies are extremely well imaged in the Møre Basin, documenting shallow prospectivity supported by the presence of successful regional analogue plays. New 3D seismic data are revealing previously unseen prospectivity in frontier and underexplored regions.
Time-constrained multiphase brittle tectonic evolution of the onshore mid-Norwegian passive margin
ABSTRACT The Scandinavian Caledonides formed during the continental collision between Baltica and Laurentia. During the collision, a complex nappe stack was thrust over the Baltican continental margin. The orogen can be subdivided into segments based on architectural differences within the Scandian nappes. The southern and central segments of the orogen link up in the Gudbrandsdalen area in south-central Norway. Alpine-type metaperidotite-bearing metasedimentary complexes occur in the southern and central segments and can be traced continuously along the strike of the orogen from one into the other segment. Traditionally, these units have been assigned to different tectono-stratigraphic levels, one below the Middle Allochthon and one above the Middle Allochthon. Here, we trace the Alpine-type metaperidotite-bearing units from Bergen to Esandsjøen and show that these units exhibit a common geologic and metamorphic history, consistent with the metaperidotite-bearing units representing a single tectonic unit. We suggest that the metaperidotite-bearing units can be used as a “marker level” to revise the tectono-stratigraphy of the Gudbrandsdalen and adjacent areas. The tectono-stratigraphic revisions imply that the Scandian nappe stack consists of seven tectono-stratigraphic levels that can be traced throughout the southern and central segments of the Scandinavian Caledonides. Moreover, the revision of the tectono-stratigraphy and new U-Pb geochronology data also suggest a revision of the timing of the succession of tectonic events leading up to the Scandian continental collision. The available evidence indicates that Baltica-derived tectonic units collided with the Iapetan/Laurentian subduction complexes as early as ca. 450 Ma. The initial collision was followed by in-sequence nappe formation of Baltican-derived units, which occurred contemporaneously with the opening of a marginal basin in the upper plate. After the arrival of thick, buoyant, unthinned Baltican crust at the trench, the main zone of convergence stepped outboard, the marginal basins closed, and those basins were thrust out-of-sequence over the previously assembled nappe stack.
ABSTRACT The Scandinavian Caledonides have a complex latest Proterozoic–Early Devonian history, but they were finally assembled during the Silurian–Devonian (Scandian orogeny) collision between Baltica and Laurentia. Their dominant structural components are the Lower (Baltican margin), Middle (Baltican and farther outboard), Upper (Iapetan arcs), and Uppermost (Laurentian margin) Allochthons. This study examined the Blåhø Nappe, a complex unit of metamorphosed, intensely deformed igneous and sedimentary rocks assigned to the Middle Allochthon. Metamorphic grades are regionally amphibolite facies, but granulite- and eclogite-facies rocks are locally found. Although most metamorphic ages span a range from Middle Ordovician to Devonian, Blåhø eclogite and other high-pressure rock ages are exclusively Scandian. We analyzed 95 samples of Blåhø Nappe metamorphosed igneous rocks, which were mostly mafic rocks, composed of a minor arc-derived set and a major set transitional between arc and depleted to enriched mid-ocean-ridge basalt (MORB), a range characteristic of back-arc basins. Historically, the Blåhø Nappe has been assigned to the Seve Nappe Complex, the upper part of the Middle Allochthon as mapped in western Sweden and easternmost Norway. In contrast to the Blåhø Nappe, eclogites and other high-pressure rocks in the Seve Nappe Complex have yielded exclusively pre–Scandian orogeny Cambrian and Ordovician ages. Additionally, post–mid-Proterozoic igneous rocks of the Seve Nappe Complex are overwhelmingly dike swarms that were emplaced during the latest Proterozoic breakup of Rodinia, which have rift and MORB-type chemical signatures rather than arc and back-arc signatures, as has the Blåhø Nappe. We hypothesize that the Blåhø Nappe precursors formed on the upper plate, above a west-directed, late Cambrian to Ordovician subduction zone off the Baltican margin. Subduction of the Baltican margin, and possibly rifted fragments on the lower plate, produced the older Seve Nappe Complex eclogites and thrust the Blåhø and Seve Nappe Complex materials onto Baltica. This left the Blåhø Nappe and Seve Nappe Complex precursors on the lower plate during Scandian subduction and collision with Laurentia, allowing exclusively Scandian eclogite formation in the Blåhø Nappe. The Blåhø Nappe and Seve Nappe Complex thus seem to have distinct origins and should not be correlated with one another.