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GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Africa
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West Africa
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Guinea (1)
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Guinea-Bissau (1)
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Sierra Leone (1)
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Altiplano (1)
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Antarctica
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Asia
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Far East
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China
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Indonesia
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Sumatra
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Japan
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Atlantic Ocean
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Commonwealth of Independent States
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Europe
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Oceania
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ODP Site 858 (1)
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Pacific Ocean
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East Pacific
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Northeast Pacific
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Southeast Pacific (1)
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North Pacific
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Northeast Pacific
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Cascadia Basin (1)
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Northwest Pacific
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Nankai Trough (3)
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South Pacific
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Nankai Trough (3)
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elements, isotopes
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hydrogen
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isotope ratios (13)
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isotopes
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stable isotopes
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O-18/O-16 (12)
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metals
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alkaline earth metals
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strontium
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Sr-87/Sr-86 (1)
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nitrogen
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oxygen
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dissolved oxygen (1)
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O-18/O-16 (12)
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sulfur (3)
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fossils
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Chordata
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Vertebrata
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Tetrapoda
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Mammalia
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Theria
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Eutheria
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Rodentia (1)
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Invertebrata
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Arthropoda
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Mandibulata
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Crustacea
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Ostracoda (1)
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Mollusca
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Cephalopoda
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Ammonoidea (1)
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Protista
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Foraminifera (6)
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Radiolaria (2)
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Thecamoeba (1)
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Plantae
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Spermatophyta
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thallophytes (2)
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geochronology methods
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geologic age
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Cenozoic
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upper Weichselian
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Wisconsinan
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upper Quaternary (3)
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Tertiary
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lower Tertiary (1)
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Neogene
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upper Miocene (1)
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Ogallala Formation (1)
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Pliocene (3)
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Paleogene
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Dongying Formation (1)
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Eocene
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lower Eocene
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Ypresian
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London Clay (1)
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middle Eocene (1)
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Oligocene
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Boom Clay (1)
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Paleocene
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upper Paleocene (1)
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upper Tertiary (1)
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upper Cenozoic (1)
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Laurentide ice sheet (2)
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Mesozoic
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lower Mesozoic (1)
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Lower Triassic
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Upper Triassic
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Paleozoic
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Carboniferous
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Namurian (1)
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Upper Pennsylvanian (2)
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Upper Carboniferous (1)
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Devonian (1)
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Ordovician
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Permian
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Castile Formation (1)
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Lower Permian (1)
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Upper Permian (2)
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Silurian
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Lower Silurian
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Llandovery (1)
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upper Paleozoic (3)
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Phanerozoic (2)
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Precambrian
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Archean (2)
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Hadean (1)
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upper Precambrian
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Proterozoic
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Huronian
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Onaping Formation (1)
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Paleoproterozoic
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Whitewater Group (1)
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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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ultramafics
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peridotites (1)
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volcanic rocks
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pyroclastics (1)
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volcanic ash (2)
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metamorphic rocks
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metamorphic rocks
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turbidite (1)
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minerals
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orthosilicates
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sorosilicates
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ring silicates (1)
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sheet silicates
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chlorite group
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chlorite (2)
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clay minerals
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illite (2)
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sulfates
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gypsum (1)
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sulfides
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pyrite (1)
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Primary terms
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absolute age (3)
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Africa
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West Africa
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Guinea (1)
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Guinea-Bissau (1)
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Sierra Leone (1)
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-
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Antarctica
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East Antarctica (1)
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Arctic Ocean
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Laptev Sea (1)
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Arctic region (1)
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Asia
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Far East
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China
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Shandong China
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Dongying Depression (1)
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Indonesia
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Sumatra
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Toba Lake (1)
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-
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Japan
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Hokkaido (1)
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Honshu
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Kii Peninsula (1)
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Kyushu (1)
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Philippine Islands
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Taiwan (1)
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Indian Peninsula
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India
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Irkutsk Russian Federation (1)
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Lake Baikal (1)
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Lena River (1)
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Siberia (1)
-
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Atlantic Ocean
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Mid-Atlantic Ridge
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Rainbow hydrothermal field (1)
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North Atlantic
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Bay of Fundy (1)
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Blake-Bahama Basin (1)
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Caribbean Sea (1)
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Gulf of Maine (1)
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Gulf of Mexico (1)
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Gulf of Saint Lawrence (2)
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Rainbow hydrothermal field (1)
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Atlantic Ocean Islands
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Azores (1)
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atmosphere (23)
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Australasia
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biogeography (4)
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boron (1)
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brines (1)
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Canada
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Arctic Archipelago (1)
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Eastern Canada
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Maritime Provinces
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Nova Scotia (2)
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Ontario
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Nipissing District Ontario
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Brent Crater (2)
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Sudbury Basin (1)
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Quebec
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Saint Lawrence Estuary (2)
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Nunavut
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Devon Island (1)
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Queen Elizabeth Islands
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Devon Island (1)
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Western Canada
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Alberta
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Athabasca Oil Sands (1)
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British Columbia (5)
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Northwest Territories
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Great Bear Lake (1)
-
-
-
-
carbon
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C-13/C-12 (5)
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C-14 (3)
-
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Caribbean region
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West Indies
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Antilles
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Greater Antilles (1)
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Lesser Antilles
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Montserrat Island
-
Soufriere Hills (1)
-
-
-
-
-
-
Cenozoic
-
Quaternary
-
Holocene
-
upper Holocene (3)
-
-
Pleistocene
-
upper Pleistocene
-
Eemian (1)
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Weichselian
-
upper Weichselian
-
Younger Dryas (1)
-
-
-
Wisconsinan
-
Woodfordian (1)
-
-
-
-
upper Quaternary (3)
-
-
Tertiary
-
lower Tertiary (1)
-
Neogene
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Miocene
-
upper Miocene (1)
-
-
Ogallala Formation (1)
-
Pliocene (3)
-
-
Paleogene
-
Dongying Formation (1)
-
Eocene
-
lower Eocene
-
Ypresian
-
London Clay (1)
-
-
-
middle Eocene (1)
-
-
Oligocene
-
Boom Clay (1)
-
-
Paleocene
-
upper Paleocene (1)
-
-
-
Shahejie Formation (1)
-
upper Tertiary (1)
-
-
upper Cenozoic (1)
-
-
Central America
-
Costa Rica
-
Nicoya Peninsula (1)
-
-
Panama (2)
-
-
Chordata
-
Vertebrata
-
Tetrapoda
-
Mammalia
-
Theria
-
Eutheria
-
Rodentia (1)
-
-
-
-
-
-
-
clay mineralogy (3)
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climate change (6)
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coal deposits
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continental drift (1)
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continental shelf (2)
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crystallography (1)
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data processing (1)
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Deep Sea Drilling Project
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IPOD
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Leg 68
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DSDP Site 502 (1)
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deformation (5)
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diagenesis (1)
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Earth (2)
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earthquakes (3)
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ecology (1)
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economic geology (4)
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electron microscopy (1)
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environmental geology (1)
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Europe
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Alps
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French Alps (1)
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Western Alps (1)
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Brianconnais Zone (1)
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Southern Europe
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Italy
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Apennines
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Monte Amiata (1)
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Sardinia Italy (1)
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Tuscany Italy
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Monte Amiata (1)
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Siena Italy (1)
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Western Europe
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Belgium (1)
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France
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Provence (1)
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United Kingdom
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England
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Scotland
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Argyllshire Scotland
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Jura Island (1)
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Hebrides
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Inner Hebrides
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Islay (1)
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Jura Island (1)
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Scottish Highlands (1)
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Wales
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South Wales coal field (1)
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faults (10)
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fractures (4)
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geochemistry (16)
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geochronology (1)
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geophysical methods (13)
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geothermal energy (5)
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glacial geology (5)
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ground water (15)
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heat flow (13)
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hydrogen
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D/H (3)
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deuterium (1)
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hydrogeology (5)
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hydrology (13)
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igneous rocks
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plutonic rocks
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ultramafics
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peridotites (1)
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-
-
volcanic rocks
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basalts
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alkali basalts
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spilite (1)
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pyroclastics (1)
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inclusions
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fluid inclusions (3)
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Indian Ocean (1)
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GeoRef Categories
Era and Period
Epoch and Age
Book Series
Date
Availability
circulation
Cross-basin chronostratigraphic correlation of carbonate succession (Llandovery, Michigan Basin, USA) using global carbon δ 13 C carb isotope excursions
The role of the HADES URL in better understanding of the Boom Clay pore water geochemistry
Abstract When assessing a rock formation for its suitability as a potential host rock for the disposal of radioactive waste, knowledge about its pore water chemical composition is essential. When the HADES underground research laboratory became operational in the early 1980s, it offered the possibility of extracting pore water from Boom Clay. At the time, however, there was almost no experience of sampling pore water from deep clay formations. The low hydraulic conductivity of clays makes it difficult to extract pore water and the sampling process itself can induce changes in the observed chemical characteristics due to oxidation and re-equilibration with the ambient air. In the past decades, significant progress has been made in the techniques and protocols to sample and monitor pore water. The use of nitrogen instead of compressed air to drill boreholes and installing piezometers limited the disturbances induced by oxidation of the clay. Furthermore, an advanced system was developed to simultaneously sample pore water and dissolved gases and measure some key geochemical parameters such as pH, pCO 2 and redox potential under in situ conditions. This has resulted in a more reliable characterization of the Boom Clay pore water and a better understanding of perturbing processes such as oxidation.
Orbital and sub-orbital pacing of mudstones in the Dongying Depression, eastern China: Implications for middle Eocene East Asian climate evolution
Frequency, distribution, and mechanisms of evaporite karst drilling hazards in the western Delaware Basin: Learnings from historical high-density exploration in Culberson County, Texas
Sealing Mechanism Based on Force Chain and Experimental Investigation of Sealing Fractures
Evaluation of measures to improve the performance of an open loop ground source heat pump system in the chalk aquifer: a case study
Where is the Hydrogen?
The hydrothermal system of Bagni San Filippo (Italy): fluids circulation and CO 2 degassing
Using Reference Springs to Describe Expected Flow, Temperature, and Chemistry Conditions for Geologically Related Groups of Springs
Measuring and interpreting CO 2 fluxes at regional scale: the case of the Apennines, Italy
Diagenetic, metamorphic, and hydrogeologic consequences of hydrothermal circulation in subducting crust
Models of temperature, entropy production and convective airflow in caves
Abstract Three major problems in cave micrometeorology are analysed: the concept of the temperature of a cave and its phenomenology; the internal energy flows and consequent local entropy production; and a non-hydrostatic physical model of the underground convective air circulation. A cave’s temperature is rich in information, but it is often difficult to obtain because it requires experimental accuracies to be pushed beyond the reach of common external meteorological instruments to detect a variety of factors, such as thermal sedimentation, seasonal variations and the effects of external morphology. Energy flow has an essential role in estimating the sensitivity of a cave to external inputs. A model for evaluating the local entropy production is developed. Entropy seems to be the most basic parameter, explaining both the sensitivity of the environment and its tendency to form complex structures. Analysis of the second-order terms of convective air circulation is more complex than expected; nevertheless, only such an analysis is able to explain the behaviours (e.g. continuity in the airflow) that cannot be predicted by the first-order models.