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Vermes
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Mesozoic
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Paleozoic
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Cambrian
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Lower Cambrian
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Upper Cambrian
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Dresbachian (1)
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Carboniferous (1)
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lower Paleozoic (1)
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Precambrian
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Proterozoic
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volcanic rocks
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basalts
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tholeiite (1)
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limburgite (1)
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phonolites (1)
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trachytes (1)
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native elements
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pyroxene group
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framework silicates
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feldspar group
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silica minerals
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orthosilicates
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zircon group
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zircon (2)
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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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kaolinite (1)
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mica group
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biotite (2)
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serpentine group
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chrysotile (2)
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talc (5)
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sulfides
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Primary terms
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absolute age (6)
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asbestos deposits (1)
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Asia
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Far East
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Japan
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Honshu
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Fukushima Japan (1)
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Yamaguchi Japan (1)
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-
-
-
-
Atlantic Ocean
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North Atlantic (1)
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Australasia
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Australia
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New South Wales Australia (1)
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bibliography (4)
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biogeography (1)
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Canada
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Eastern Canada
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Maritime Provinces
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Nova Scotia (4)
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Newfoundland and Labrador
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Labrador (1)
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Newfoundland
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Burin Peninsula (1)
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Ontario (2)
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Quebec (12)
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carbon
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C-13/C-12 (1)
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C-14 (1)
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catalogs (1)
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Cenozoic
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Quaternary
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Holocene
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upper Holocene (1)
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Pleistocene
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Champlain Sea (1)
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upper Pleistocene (2)
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upper Quaternary (1)
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Tertiary (4)
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Chordata
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Vertebrata
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Pisces (1)
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clay mineralogy (1)
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climate change (1)
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Europe
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Graptolithina (1)
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igneous rocks
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diorites
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tonalite (1)
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granites
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aplite (1)
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lamprophyres (2)
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syenites
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nepheline syenite
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foyaite (1)
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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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tholeiite (1)
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limburgite (1)
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phonolites (1)
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trachytes (1)
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inclusions
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fluid inclusions (2)
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intrusions (16)
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Invertebrata
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Arthropoda
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Mandibulata
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Crustacea
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Branchiopoda (1)
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Ostracoda (4)
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-
-
Trilobitomorpha
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Trilobita
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Ptychopariida (1)
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Brachiopoda (10)
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Bryozoa
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Cryptostomata (1)
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Trepostomata (1)
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Cnidaria
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Anthozoa (4)
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Hydrozoa (1)
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Echinodermata
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Crinozoa
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Crinoidea (1)
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Cystoidea (1)
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-
-
Mollusca
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Gastropoda
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Pteropoda (1)
-
-
-
Porifera
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Stromatoporoidea (3)
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Vermes
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Annelida (2)
-
-
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isotopes
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radioactive isotopes
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Ar-40/Ar-39 (1)
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C-14 (1)
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stable isotopes
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Ar-40/Ar-39 (1)
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C-13/C-12 (1)
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O-18/O-16 (3)
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S-34/S-32 (2)
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lineation (2)
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magmas (6)
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mantle (2)
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maps (22)
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Mesozoic
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Franciscan Complex (1)
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Jurassic (1)
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metal ores
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copper ores (5)
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lead-zinc deposits (1)
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polymetallic ores (1)
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metals
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alkaline earth metals
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calcium (1)
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magnesium (1)
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chromium (1)
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copper (4)
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iron (4)
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rare earths (2)
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tin (1)
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metamorphic rocks
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gneisses (4)
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marbles (1)
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metaigneous rocks
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metabasalt (1)
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metasedimentary rocks
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metaconglomerate (1)
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metapelite (1)
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metavolcanic rocks (3)
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noble gases
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Ar-40/Ar-39 (1)
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North America
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Appalachians
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Catskill Mountains (1)
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Northern Appalachians (3)
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Canadian Shield
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Grenville Province (2)
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Champlain Valley (8)
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Lake Champlain (2)
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Rocky Mountains
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U. S. Rocky Mountains
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Bighorn Mountains (1)
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Saint Lawrence Lowlands (1)
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orogeny (13)
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oxygen
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O-18/O-16 (3)
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paleobotany (3)
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paleoclimatology (3)
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paleoecology (5)
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paleogeography (1)
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paleontology (37)
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Paleozoic
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Cambrian
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Lower Cambrian
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Pinney Hollow Formation (1)
-
-
Upper Cambrian
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Dresbachian (1)
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Trempealeauan (1)
-
-
-
Carboniferous (1)
-
Devonian
-
Gile Mountain Formation (5)
-
Lower Devonian
-
Littleton Formation (1)
-
-
-
lower Paleozoic (1)
-
middle Paleozoic (1)
-
Ordovician
-
Lower Ordovician
-
Beekmantown Group (1)
-
Tremadocian (1)
-
-
Martinsburg Formation (1)
-
Meguma Group (1)
-
Middle Ordovician
-
Ammonoosuc Volcanics (2)
-
Chazy Group (2)
-
Chazyan (2)
-
-
-
Silurian (6)
-
upper Paleozoic (1)
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Waits River Formation (4)
-
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paragenesis (2)
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permafrost (1)
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petroleum
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natural gas (1)
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petrology (32)
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phase equilibria (6)
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Plantae
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algae
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calcareous algae (1)
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Chlorophyta
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Botryococcus (1)
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Charophyta (1)
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Rhodophyta (1)
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plate tectonics (6)
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Precambrian
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upper Precambrian
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Proterozoic
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Neoproterozoic (1)
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problematic fossils (1)
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reefs (5)
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remote sensing (1)
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clastic rocks
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sandstone (1)
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shale (4)
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coal
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lignite (1)
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sedimentary structures
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biogenic structures
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stromatolites (2)
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graded bedding (1)
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United States
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Virginia (3)
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Underhill Formation (1)
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sedimentary rocks
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sandstone (1)
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shale (4)
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coal
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sedimentary structures
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sedimentary structures
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graded bedding (1)
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planar bedding structures (1)
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secondary structures
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concretions (4)
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soft sediment deformation
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clastic dikes (1)
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turbidity current structures (1)
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sediments
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sediments
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clastic sediments
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kaolin (1)
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soils
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paleosols (1)
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soils (1)
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A century of urban landslides: the legacy and consequences of altering riverbank landscapes Available to Purchase
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Formation of the Green Mountain anticlinorium in northern Vermont at ca. 420 Ma Available to Purchase
ABSTRACT The Appalachian Mountains in northern Vermont host a complex rock record of the tectonic evolution of eastern Laurentia, from the opening of the Iapetus Ocean to the subsequent formation of a convergent Paleozoic margin involving multiple phases of orogenesis. Prior 40 Ar/ 39 Ar studies in Vermont and northern Massachusetts have generally interpreted two major events associated with a dominantly Ordovician Taconic orogeny and a Devonian Acadian orogeny; intermediate ages were considered to reflect Taconic metamorphism and/or deformation that was “partially reset” during the Acadian orogeny. However, recent studies have documented Salinic ages in northern Vermont, aligning with multiple lines of evidence in southern Quebec for an intervening Salinic orogeny during the Silurian. This study reports integrated microstructural and 40 Ar/ 39 Ar geochronological analyses of samples collected across the Green Mountain anticlinorium in northern Vermont. The dominant S 2 and S 3 foliations are defined in thin section by predominantly white mica/quartz microlithons and aligned mica cleavage domains in schist to graphitic schist that formed under greenschist-facies conditions. Correlation of microstructures across the field area and associated 40 Ar/ 39 Ar plateau ages reveal a spatial pattern associated with microstructural development across the anticlinorium. In the eastern limb, the oldest plateau age, 457.6 ± 2.0 Ma (1σ), is interpreted to reflect the timing of formation of S 2 . The youngest plateau age, 419.0 ± 2.4 Ma, comes from the western limb of the anticline near the trace of the Honey Hollow fault, where S 2 is completely transposed by S 3 . Intermediate ages were obtained across the axis of the anticline, where S 3 is a crenulation cleavage. While the Green Mountain anticlinorium has been previously interpreted to have formed in the Devonian during the Acadian orogeny, the typical ca. 386–355 Ma ages are notably absent in the data set, except in locally disturbed spectra. The results of this work are closely aligned with published results of 40 Ar/ 39 Ar dating in southern Quebec that reflect deformation during Taconic and Salinic orogenesis. These new data, together with recently reported ages of west-directed transport on Taconic thrusts along the western Green Mountain front at ca. 420 Ma, suggest a phase of mountain building in the New England Appalachians that has been previously unreported in Vermont. The formation of the Green Mountain anticlinorium coincided with a complex tectonic interval that overlapped temporally with (1) the transition from Salinic thrusting to normal faulting, (2) magmatism attributed to slab breakoff, and (3) syntectonic deposition in the Connecticut Valley–Gaspé Basin.
A Laurentian margin subduction perspective: Geodynamic constraints from phase equilibria modeling of barroisite greenstones, northern USA Appalachians Available to Purchase
Quartz inclusions in garnet: Time capsules of early mountain building Available to Purchase
ABSTRACT Much of the early prograde history in metamorphic rocks is lost due to overprinting at near-peak conditions or through retrograde modification during exhumation. Fortunately, inclusions encapsulated in rigid porphyroblasts may preserve a record of early burial conditions. Quartz inclusions in garnet porphyroblasts from the Strafford Dome, eastern Vermont, have homogeneous Ti concentrations ([Ti]) that differ from matrix quartz, which retains a history of Si-liberating metamorphic reactions and fluid influx. We applied growth-composition models to evaluate potential processes associated with Ti partitioning in quartz before encapsulation in garnet, including a model for constant-volume growth of quartz due to mineral dissolution-transfer processes and growth as a result of Si-liberating diagenetic and metamorphic reactions. Because these processes typically occur at low temperatures, quartz with exceedingly low [Ti] (<<1 ppm) would be formed and cannot account for the homogeneous Ti distribution at concentrations between 2.5 and 5 ppm observed in the sample. This suggests that chemical reequilibration through dynamic recrystallization must have taken place prior to encapsulation in garnet. Analysis of fluid and graphite inclusions with Raman spectroscopy in different microstructural settings allowed the characterization of fluid composition and temperature of microstructure development early in the prograde history. The findings from this study exemplify the utility of garnet hosts to shield inclusion minerals from chemical modification and recrystallization during later events. As such, they provide a window into the early stages of orogenesis and provide insights concerning the mechanisms controlling equilibration of quartz.
Cavity Radius Scaling for Underground Explosions in Hard Rock Available to Purchase
Late-glacial and Holocene evolution as a driver of diversity and complexity of the northeastern North American alpine landscapes: a synthesis Available to Purchase
Ankerite grains with dolomite cores: A diffusion chronometer for low- to medium-grade regionally metamorphosed clastic sediments Available to Purchase
Effect of the Detonation Velocity of Explosives on Seismic Radiation Available to Purchase
Shear Waves from Explosions in Granite Revisited: Lessons Learned from the New England Damage Experiment Available to Purchase
Timing of tectonometamorphism across the Green Mountain anticlinorium, northern Vermont Appalachians: 40 Ar/ 39 Ar data and correlations with southern Quebec Available to Purchase
The Vermont Appalachians expose metamorphosed magmatic rocks ranging in age from Late Proterozoic to Cretaceous. Geochemistry, in concert with stratigraphic, structural, and metamorphic studies, reveals the origins of the magmatic rocks. Late Proterozoic–Early Cambrian dikes and greenstones in western Vermont formed during rifting of the Laurentian continent to form the Iapetus Ocean. Cambrian serpentinized peridotite represents forearc suprasubduction zone ophiolitic fragments. Cambrian to Ordovician amphibolites and felsic gneisses were formed as part of the Shelburne Falls volcanic arc. The Early Ordovician Mount Norris intrusive suite formed in an extensional setting in the vicinity of the Shelburne Falls arc. Silurian extensional magmatism at ca. 420 Ma is represented by the Comerford intrusive suite of dikes and small metamorphosed gabbro/diorite bodies in northeastern Vermont. Extension in the Silurian occurred behind a volcanic arc, perhaps because of slab detachment. Late Devonian granitoid bodies cut metamorphosed Silurian sedimentary units in northeastern Vermont. They probably formed as a result of delamination of lithosphere and consequent partial melting of mantle lithosphere and lower crust following continental collision. The last episode of magmatism in Vermont is represented by lamprophyric dikes and small alkaline bodies, which intruded at 130–110 Ma. Formation of the Late Proterozoic to Late Devonian magmatic rocks is explained in plate models involving continental rifting to produce the Iapetus Ocean in the Late Proterozoic, followed by subduction processes to close that ocean in stages from the Early Ordovician to Devonian time.