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NARROW
GeoRef Subject
-
all geography including DSDP/ODP Sites and Legs
-
Africa
-
Chad Basin (1)
-
East Africa
-
Kenya
-
Kenya Rift valley (1)
-
Nakuru Basin (1)
-
-
Sudan (1)
-
Tanzania
-
Olduvai Gorge (3)
-
-
-
East African Rift (2)
-
Kalahari Desert (2)
-
Nile River (1)
-
Nile Valley (1)
-
North Africa
-
Algeria (1)
-
Egypt (2)
-
Libya (1)
-
-
Sahara (2)
-
Southern Africa
-
Botswana
-
Okavango Delta (3)
-
-
Namibia (1)
-
-
West Africa
-
Chad (1)
-
-
-
Altiplano (1)
-
Antarctica
-
Ross Ice Shelf (1)
-
Victoria Land
-
McMurdo dry valleys (2)
-
-
-
Asia
-
Altai Mountains
-
Gorny Altai (1)
-
Mongolian Altai (1)
-
-
Altai Russian Federation
-
Chuya Basin (1)
-
Gorny Altai (1)
-
-
Angara River (1)
-
Arabian Peninsula
-
Oman (1)
-
-
Far East
-
China
-
Heilongjiang China (1)
-
Henan China (1)
-
Huang He (1)
-
Jilin China (1)
-
Liaoning China (1)
-
Loess Plateau (1)
-
Qaidam Basin (2)
-
Qinghai China (1)
-
Shanxi China (1)
-
Sichuan Basin (1)
-
Sichuan China (1)
-
Songliao Basin (2)
-
Xizang China (1)
-
Yangtze River (1)
-
-
Mongolia
-
Hangay Mountains (1)
-
Mongolian Altai (1)
-
-
-
Himalayas (1)
-
Indian Peninsula
-
India
-
Haryana India (1)
-
-
Indus Valley (1)
-
Jammu and Kashmir
-
Jammu (1)
-
Ladakh (1)
-
-
-
Indus River (1)
-
Irkutsk Basin (1)
-
Irkutsk Russian Federation (1)
-
Lake Baikal (1)
-
Lena River (1)
-
Middle East
-
Dead Sea (1)
-
Dead Sea Rift (1)
-
Iran
-
Fars Iran (1)
-
-
Israel (1)
-
Turkey (1)
-
-
Novosibirsk Russian Federation (1)
-
Ob River (1)
-
Siberia (1)
-
Siberian Platform (1)
-
Tibetan Plateau (4)
-
Tuva Russian Federation (1)
-
West Siberia (1)
-
Yenisei River (1)
-
-
Atlantic Ocean
-
North Atlantic
-
Hudson Bay (1)
-
North Sea (1)
-
-
-
Australasia
-
Australia
-
South Australia
-
Lake Eyre (1)
-
Lake Frome (1)
-
-
-
-
Canada
-
Eastern Canada
-
Ontario
-
Hastings County Ontario (1)
-
Northumberland County Ontario (1)
-
Prince Edward County Ontario (1)
-
-
-
Hudson Bay (1)
-
Western Canada
-
British Columbia (1)
-
Canadian Cordillera (1)
-
Manitoba (1)
-
Northwest Territories
-
Great Slave Lake (1)
-
-
Yukon Territory (2)
-
-
-
Channeled Scabland (2)
-
Colorado River (7)
-
Colorado River basin (1)
-
Columbia Hills (1)
-
Columbia River (2)
-
Commonwealth of Independent States
-
Russian Federation
-
Altai Russian Federation
-
Chuya Basin (1)
-
Gorny Altai (1)
-
-
Angara River (1)
-
Irkutsk Basin (1)
-
Irkutsk Russian Federation (1)
-
Lake Baikal (1)
-
Lena River (1)
-
Novosibirsk Russian Federation (1)
-
Ob River (1)
-
Siberian Platform (1)
-
Tuva Russian Federation (1)
-
Yenisei River (1)
-
-
West Siberia (1)
-
-
Death Valley (4)
-
Eagle River (1)
-
Europe
-
Alps
-
Eastern Alps
-
Dinaric Alps (1)
-
-
-
Central Europe
-
Austria (1)
-
Hungary (1)
-
-
Pannonian Basin (1)
-
Southern Europe
-
Bosnia-Herzegovina (1)
-
Croatia (1)
-
Dinaric Alps (1)
-
Iberian Peninsula
-
Spain
-
Cameros Basin (1)
-
La Rioja Spain (1)
-
-
-
Italy
-
Apennines
-
Monte Amiata (1)
-
-
Tuscany Italy
-
Monte Amiata (1)
-
-
-
Romania (1)
-
-
Western Europe
-
France
-
Rhone France (1)
-
-
Scandinavia
-
Denmark (1)
-
-
United Kingdom
-
Great Britain
-
England
-
Yorkshire England
-
North Yorkshire England (1)
-
-
-
Scotland
-
Highland region Scotland (1)
-
-
-
-
Wadden Sea (1)
-
-
-
Grand Canyon (2)
-
Green River basin (2)
-
Lake Mead (1)
-
Lake Nipissing (1)
-
Mexico (1)
-
North America
-
Basin and Range Province
-
Great Basin (7)
-
-
Great Lakes
-
Lake Michigan (1)
-
Lake Ontario (1)
-
-
Great Plains
-
Northern Great Plains (1)
-
-
North American Cordillera
-
Canadian Cordillera (1)
-
-
Rio Grande Rift (1)
-
Rocky Mountains
-
U. S. Rocky Mountains
-
Absaroka Range (1)
-
San Juan Mountains (1)
-
-
-
Saint Lawrence Lowlands (1)
-
-
Owens Valley (3)
-
Pacific Ocean
-
East Pacific
-
Northeast Pacific
-
Gulf of California (1)
-
-
-
North Pacific
-
Northeast Pacific
-
Gulf of California (1)
-
-
-
-
Rio Grande (1)
-
Rio Grande Valley (1)
-
San Andreas Fault (1)
-
San Luis Valley (2)
-
Sierra Nevada (2)
-
South America
-
Andes
-
Central Andes (1)
-
-
Argentina (1)
-
Bolivia (1)
-
Brazil
-
Ceara Brazil (1)
-
-
Lake Titicaca (1)
-
Patagonia (1)
-
Venezuela
-
Bocono Fault (1)
-
Merida Venezuela (1)
-
-
-
Storegga Slide (1)
-
United States
-
Amargosa Desert (2)
-
Arizona
-
Mohave County Arizona (1)
-
-
California
-
Inyo County California
-
Inyo Mountains (1)
-
Owens Lake (3)
-
Panamint Range (1)
-
-
Modoc County California (1)
-
Mono County California
-
Mono Lake (1)
-
-
Northern California (1)
-
Southern California (2)
-
-
Colorado
-
Alamosa County Colorado (1)
-
Colorado mineral belt (1)
-
Conejos County Colorado (1)
-
Gunnison River (2)
-
La Plata County Colorado (1)
-
Rio Grande County Colorado (1)
-
Saguache County Colorado (1)
-
San Juan County Colorado (1)
-
Teller County Colorado
-
Florissant Fossil Beds National Monument (1)
-
-
-
Colorado Plateau (3)
-
Columbia Plateau (2)
-
Great Basin (7)
-
Idaho
-
Idaho Panhandle (1)
-
Shoshone County Idaho (1)
-
-
Illinois (1)
-
Indiana (1)
-
Michigan
-
Michigan Upper Peninsula
-
Keweenaw Peninsula (1)
-
-
-
Minnesota
-
Dakota County Minnesota (1)
-
Goodhue County Minnesota (1)
-
Minnesota River valley (1)
-
Wilkin County Minnesota (1)
-
-
Mississippi Valley
-
Upper Mississippi Valley (1)
-
-
Missouri (1)
-
Mojave Desert (3)
-
Montana (2)
-
Nevada
-
Elko County Nevada (1)
-
Mineral County Nevada (1)
-
-
New Mexico
-
Taos Plateau (1)
-
Torrance County New Mexico (1)
-
-
New York
-
Essex County New York (1)
-
Saint Lawrence County New York (1)
-
-
North Dakota
-
Richland County North Dakota (1)
-
-
Ohio
-
Lucas County Ohio (1)
-
-
Oregon
-
Harney County Oregon
-
Steens Mountain (1)
-
-
Lake County Oregon (1)
-
-
Pennsylvania
-
Crawford County Pennsylvania (1)
-
Mercer County Pennsylvania (1)
-
-
Sevier orogenic belt (1)
-
South Dakota
-
Grant County South Dakota (1)
-
Roberts County South Dakota (1)
-
-
Southwestern U.S. (3)
-
Tennessee
-
Knox County Tennessee (1)
-
Washington County Tennessee (1)
-
-
U. S. Rocky Mountains
-
Absaroka Range (1)
-
San Juan Mountains (1)
-
-
Uinta Basin (2)
-
Uncompahgre Uplift (2)
-
Utah
-
Box Elder County Utah (1)
-
Juab County Utah (1)
-
Sanpete County Utah (1)
-
Tooele County Utah (2)
-
Utah County Utah (1)
-
Wasatch Plateau (1)
-
Washington County Utah (2)
-
-
Washakie Basin (1)
-
Washington
-
Grant County Washington (1)
-
-
Western U.S. (3)
-
Wyoming
-
Sweetwater County Wyoming (1)
-
-
-
Walker Lake (2)
-
Western Desert (1)
-
Wind River basin (1)
-
-
commodities
-
metal ores
-
gold ores (1)
-
-
mineral deposits, genesis (1)
-
sodium carbonate (1)
-
-
elements, isotopes
-
boron (1)
-
carbon
-
C-13/C-12 (6)
-
C-14 (25)
-
organic carbon (2)
-
-
chemical ratios (2)
-
halogens
-
chlorine
-
Cl-36 (4)
-
-
-
hydrogen
-
deuterium (1)
-
-
isotope ratios (21)
-
isotopes
-
radioactive isotopes
-
Be-10 (5)
-
C-14 (25)
-
Cl-36 (4)
-
Pb-206/Pb-204 (1)
-
Pb-207/Pb-204 (1)
-
Pb-208/Pb-204 (1)
-
U-238/U-234 (1)
-
-
stable isotopes
-
C-13/C-12 (6)
-
deuterium (1)
-
He-3 (1)
-
N-15/N-14 (1)
-
Nd-144/Nd-143 (1)
-
O-18/O-16 (11)
-
Pb-206/Pb-204 (1)
-
Pb-207/Pb-204 (1)
-
Pb-208/Pb-204 (1)
-
Sr-87/Sr-86 (7)
-
-
-
large-ion lithophile elements (1)
-
metals
-
actinides
-
uranium
-
U-238/U-234 (1)
-
-
-
alkaline earth metals
-
beryllium
-
Be-10 (5)
-
-
calcium
-
Sr/Ca (2)
-
-
strontium
-
Sr/Ca (2)
-
Sr-87/Sr-86 (7)
-
-
-
iron (1)
-
lead
-
Pb-206/Pb-204 (1)
-
Pb-207/Pb-204 (1)
-
Pb-208/Pb-204 (1)
-
-
rare earths
-
neodymium
-
Nd-144/Nd-143 (1)
-
-
-
titanium (1)
-
-
nitrogen
-
N-15/N-14 (1)
-
organic nitrogen (1)
-
-
noble gases
-
helium
-
He-3 (1)
-
-
-
oxygen
-
O-18/O-16 (11)
-
-
phosphorus (1)
-
sulfur (2)
-
-
fossils
-
Chordata
-
Vertebrata
-
Pisces
-
Osteichthyes
-
Actinopterygii (1)
-
-
-
Tetrapoda
-
Aves (1)
-
Mammalia
-
Theria
-
Eutheria
-
Artiodactyla
-
Ruminantia
-
Bovidae
-
Bison (1)
-
-
-
-
Perissodactyla
-
Ceratomorpha
-
Rhinocerotidae (1)
-
-
-
Primates
-
Hominidae (1)
-
-
-
-
-
Reptilia
-
Diapsida
-
Archosauria
-
Crocodilia (1)
-
dinosaurs
-
Saurischia
-
Theropoda (1)
-
-
-
-
-
-
-
-
-
eukaryotes (2)
-
ichnofossils (1)
-
Invertebrata
-
Arthropoda
-
Mandibulata
-
Crustacea
-
Malacostraca
-
Amphipoda (1)
-
-
Ostracoda
-
Podocopida
-
Cypridocopina
-
Cyprididae
-
Candona (1)
-
-
-
-
-
-
-
-
Mollusca
-
Bivalvia
-
Heterodonta
-
Veneroida (1)
-
-
-
Gastropoda (4)
-
-
Protista
-
Foraminifera
-
Rotaliina
-
Globigerinacea
-
Neogloboquadrina
-
Neogloboquadrina pachyderma (1)
-
-
-
-
-
-
-
microfossils (21)
-
palynomorphs
-
acritarchs (2)
-
miospores
-
pollen (2)
-
-
-
Plantae
-
algae
-
diatoms (4)
-
-
Spermatophyta
-
Angiospermae
-
Dicotyledoneae
-
Dryas (1)
-
Salix (1)
-
-
-
Gymnospermae
-
Coniferales
-
Picea (1)
-
Pinaceae
-
Abies (1)
-
Larix (1)
-
Pinus (1)
-
-
-
-
-
-
prokaryotes (1)
-
tracks (1)
-
-
geochronology methods
-
Ar/Ar (5)
-
exposure age (6)
-
fission-track dating (2)
-
infrared stimulated luminescence (2)
-
optically stimulated luminescence (14)
-
paleomagnetism (7)
-
racemization (2)
-
tephrochronology (1)
-
Th/U (4)
-
tree rings (1)
-
U/Pb (4)
-
uranium disequilibrium (4)
-
-
geologic age
-
Cenozoic
-
Bronze Age (1)
-
Quaternary
-
Cordilleran ice sheet (2)
-
Holocene
-
lower Holocene (3)
-
middle Holocene (1)
-
Subboreal (1)
-
upper Holocene (1)
-
-
Pleistocene
-
Bishop Tuff (1)
-
Illinoian (1)
-
Lake Agassiz (5)
-
Lake Chicago (1)
-
Lake Lahontan (2)
-
Lake Missoula (3)
-
lower Pleistocene (2)
-
Matuyama Chron (1)
-
middle Pleistocene (6)
-
Saalian (1)
-
upper Pleistocene
-
Lake Iroquois (2)
-
Lake Lisan (1)
-
Lisan Formation (1)
-
Sartanian (1)
-
Weichselian
-
upper Weichselian
-
Allerod (1)
-
Bolling (1)
-
Younger Dryas (2)
-
-
-
Wisconsinan
-
Lavery Till (1)
-
upper Wisconsinan (3)
-
-
-
-
upper Quaternary (9)
-
-
Siwalik System (1)
-
Stone Age
-
Paleolithic (1)
-
-
Tertiary
-
Challis Volcanics (1)
-
Muddy Creek Formation (1)
-
Neogene
-
Bidahochi Formation (1)
-
Miocene
-
Barstow Formation (1)
-
Columbia River Basalt Group (1)
-
lower Miocene (1)
-
middle Miocene (2)
-
upper Miocene
-
Messinian (2)
-
Pannonian (1)
-
Tortonian (1)
-
-
-
Pliocene
-
Gauss Chron (1)
-
lower Pliocene (4)
-
upper Pliocene (2)
-
-
upper Neogene (2)
-
-
Paleogene
-
Eocene
-
Absaroka Supergroup (1)
-
Green River Formation (5)
-
Lake Gosiute (4)
-
Lake Uinta (1)
-
middle Eocene
-
Laney Shale Member (2)
-
-
upper Eocene (1)
-
-
Flagstaff Formation (1)
-
Paleocene (1)
-
-
upper Tertiary (1)
-
-
upper Cenozoic (1)
-
-
Lake Bonneville (3)
-
Laurentide ice sheet (7)
-
Mesozoic
-
Cretaceous
-
Lower Cretaceous
-
Aptian (1)
-
Barremian (1)
-
-
Middle Cretaceous (1)
-
Quantou Formation (1)
-
-
Jurassic
-
Lower Jurassic
-
Hettangian (2)
-
Toarcian (1)
-
-
Upper Jurassic
-
Brushy Basin Member (1)
-
Morrison Formation (1)
-
-
-
Moenave Formation (2)
-
Navajo Sandstone (1)
-
Triassic
-
Moenkopi Formation (1)
-
Upper Triassic
-
Chinle Formation (2)
-
Petrified Forest Member (1)
-
-
-
upper Mesozoic
-
Yixian Formation (1)
-
-
-
MIS 2 (1)
-
MIS 3 (1)
-
MIS 5 (1)
-
MIS 6 (2)
-
MIS 7 (1)
-
Paleozoic
-
Carboniferous
-
Upper Carboniferous (1)
-
-
Permian
-
Kaibab Formation (1)
-
-
-
Precambrian
-
Archean
-
Timiskaming Group (1)
-
-
Nonesuch Shale (1)
-
upper Precambrian
-
Proterozoic
-
Lewisian (1)
-
Mesoproterozoic
-
Stenian (1)
-
-
Neoproterozoic
-
Tonian (1)
-
Torridonian (1)
-
-
Oronto Group (1)
-
-
-
-
-
igneous rocks
-
igneous rocks
-
volcanic rocks
-
basalts
-
flood basalts (1)
-
-
pyroclastics
-
scoria (1)
-
tuff (9)
-
-
-
-
-
minerals
-
carbonates
-
calcite (2)
-
dolomite (1)
-
trona (1)
-
-
halides
-
chlorides
-
halite (1)
-
-
-
oxides
-
iron oxides (1)
-
rutile (1)
-
-
phosphates
-
apatite (2)
-
-
silicates
-
framework silicates
-
feldspar group
-
alkali feldspar
-
sanidine (1)
-
-
-
-
orthosilicates
-
nesosilicates
-
zircon group
-
zircon (5)
-
-
-
-
sheet silicates
-
clay minerals (1)
-
illite (1)
-
mica group (1)
-
sepiolite (1)
-
-
-
sulfates
-
alunite (1)
-
gypsum (1)
-
-
sulfides
-
pyrite (1)
-
-
-
Primary terms
-
absolute age (36)
-
Africa
-
Chad Basin (1)
-
East Africa
-
Kenya
-
Kenya Rift valley (1)
-
Nakuru Basin (1)
-
-
Sudan (1)
-
Tanzania
-
Olduvai Gorge (3)
-
-
-
East African Rift (2)
-
Kalahari Desert (2)
-
Nile River (1)
-
Nile Valley (1)
-
North Africa
-
Algeria (1)
-
Egypt (2)
-
Libya (1)
-
-
Sahara (2)
-
Southern Africa
-
Botswana
-
Okavango Delta (3)
-
-
Namibia (1)
-
-
West Africa
-
Chad (1)
-
-
-
Antarctica
-
Ross Ice Shelf (1)
-
Victoria Land
-
McMurdo dry valleys (2)
-
-
-
Asia
-
Altai Mountains
-
Gorny Altai (1)
-
Mongolian Altai (1)
-
-
Altai Russian Federation
-
Chuya Basin (1)
-
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paleolakes
How headward erosion breaches upstream paleolakes: Insights from dated longitudinal fluvial terrace correlations within the Sanmen Gorge, Yellow River
Diatom evidence for a groundwater divide that limited the extent of Lake Estancia, New Mexico, USA, highstands during the Last Glacial Maximum
A New Look at Landslides of the Vermilion and Echo Cliffs, Northern Arizona
ARTIST’S IRON-BASED NATURAL EARTH PIGMENTS OF TUSCANY (MONTE AMIATA VOLCANO, ITALY)
Linkages between nitrogen cycling, nitrogen isotopes, and environmental properties in paleo-lake basins
PALEOENVIRONMENTAL ANALYSIS OF A LOWER CRETACEOUS PALEOLAKE FROM THE IGUATU BASIN BASED ON ITS OSTRACOD FAUNA AND XRF DATA
Abstract The organic-rich upper Lower Jurassic Da'anzhai Member (Ziliujing Formation) of the Sichuan Basin, China is the first stratigraphically well-constrained lacustrine succession associated with the Toarcian Oceanic Anoxic Event (T-OAE; c. 183 Ma). The expansion of the palaeo-Sichuan mega-lake, probably one of the most extensive freshwater systems to have existed on the planet, is marked by large-scale lacustrine organic productivity and carbon burial during the T-OAE, possibly owing to intensified hydrological cycling and nutrient supply. New molecular biomarker and organic petrographical analyses, combined with bulk organic and inorganic geochemical and palynological data, are presented here, providing insight into aquatic productivity, land-plant biodiversity and terrestrial ecosystem evolution in continental interiors during the T-OAE. We show that lacustrine algal growth during the T-OAE accounted for a significant organic-matter flux to the lakebed in the palaeo-Sichuan mega-lake. Lacustrine water-column stratification during the T-OAE facilitated the formation of dysoxic–anoxic conditions at the lake bottom, favouring organic-matter preservation and carbon sequestration into organic-rich black shales in the Sichuan Basin. We attribute the palaeo-Sichuan mega-lake expansion to enhanced hydrological cycling in a more vigorous monsoonal climate in the hinterland during the T-OAE greenhouse.
ABSTRACT The late Eocene Florissant Formation in central Colorado is a rich and diverse continental Lagerstätte yielding well-preserved fossil assemblages from lacustrine and fluvial facies. This investigation focused on the lacustrine facies at Clare’s Quarry and used biotic and abiotic evidence to characterize aspects of the lake and processes that resulted in the accumulation and preservation of the host rock and its fossils. Autecology of modern analogs representing the fossil diatom taxa was used to augment sedimentary data in characterizing the lake, propose peripheral habitats within the catchment area, and suggest a terrestrial source for mudstone units. The sedimentary and stratigraphic record at the study site reveals a lake with sufficient depth to allow bottom waters to remain isolated and anoxic for long periods. Sediments that accumulated in the lake produced distinct lacustrine lithofacies that are interpreted as representing at least three modes of origin: stable lake, pyroclastic, and mud turbidite sedimentation. Slow, suspension settling of fine clays and volcanic ash into a moderately deep, stable lake resulted in laminated shales. These laminated shales contain frustules of diatoms from planktic and benthic lake habitats; diatoms transported into the lake from streams and wetlands; fish, mollusks, ostracods, and insects; and plants from marginal and upslope environments. Intermittent volcanic eruptions produced air-fall ash and granular tuff that accumulated as interbeds within the lake shales. Periods of stable lake sedimentation were frequently interrupted by rapid influxes of suspended fine clays, perhaps as mud-dominated turbidites that prograded into the lake at intervals of high runoff triggered by climatic, volcanic, or tectonic events.
ABSTRACT The deposits of Pleistocene Lake Tecopa include lacustrine, alluvial, eolian, and groundwater discharge deposits of the Tecopa basin in southeastern California. Stratigraphic sections measured in the Tecopa basin and detailed sedimentary facies analysis were used to interpret the depositional settings and track the evolution of sedimentary processes in the basin during the Pleistocene. The early Pleistocene (ca. 2.4–1.0 Ma) deposits of the Lake Tecopa beds record deposition in small saline, alkaline lakes and playas with surrounding mudflats and sandflats and adjacent alluvial fans. Ancestral Amargosa River gravels are first observed in fluvial deposits in the northern part of the basin at ca. 1.0 Ma and correspond with lake expansions (Glass Mountain [GM] lakes) during deposition of the uppermost Glass Mountain ash beds. Several oscillations in lake level followed the post-GM lake decline, culminating in the basin-filling Lava Creek (LC) lake, which reached its acme during deposition of the 0.63 Ma Lava Creek B ash bed. The post–Lava Creek B strata reflect primarily alluvial, fluvial, eolian, and groundwater discharge depositional processes, punctuated in the youngest part of the section by basin-filling lakes (high lake 1 and 2). The Lava Creek B ash bed and older lacustrine strata exhibit extensive zeolitization and clay authigenesis, characteristic of saline, alkaline lake deposits, but the post–Lava Creek B ash bed lacustrine strata have only minor zeolite and clay alteration, suggesting fresher water conditions and a change in the hydrologic state of the basin. Sedimentological observations along with shoreline elevation data provide evidence for intermittent spillover of basin-filling lakes after ca. 0.63 Ma. Subtle tectonic deformation influenced sedimentary processes in the Tecopa basin throughout its history. Episodes of uplift and tilting of Lake Tecopa strata during the middle Pleistocene in the southern part of the basin along the Tecopa Hump likely controlled the sill elevation for spillover of the lake, creating accommodation space for late Pleistocene basin-filling lakes. Ultimately, decreased uplift could not keep pace with increased discharge resulting from high effective moisture during latest middle Pleistocene pluvial periods, and Lake Tecopa drained, most likely during or immediately after marine oxygen isotope stage (MIS) 10 (ca. 0.3 Ma). The deposits of Lake Tecopa provide a detailed record of Pleistocene paleoclimate from ca. 2.4 to 0.3 Ma that demonstrates Milankovitch-scale tuning and clarifies the amplitude of Pleistocene climate change in the southern Great Basin of North America.
Middle and late Pleistocene pluvial history of Newark Valley, central Nevada, USA
ABSTRACT Newark Valley lies between the two largest pluvial lake systems in the Great Basin, Lake Lahontan and Lake Bonneville. Soils and geomorphology, stratigraphic interpretations, radiocarbon ages, and amino acid racemization geochronology analyses were employed to interpret the relative and numerical ages of lacustrine deposits in the valley. The marine oxygen isotope stage (MIS) 2 beach barriers are characterized by well-preserved morphology and deposits with youthful soil development, with Bwk horizons and maximum stage I+ carbonate morphology. Radiocarbon ages of gastropods and tufas within these MIS 2–age deposits permit construction of a latest Pleistocene lake-level curve for Newark Valley, including a maximum limiting age of 13,780 ± 50 14 C yr B.P. for the most recent highstand, and they provide a calibration point for soil development in lacustrine deposits in the central Great Basin. The MIS 8–age to MIS 4–age beach barriers are higher in elevation and represent a larger lake than existed during MIS 2. The beach barriers have subdued morphology, are only preserved in short segments, and have stronger soil development, with Bkm and/or Bkmt horizons and maximum stage III+ to IV carbonate morphology. Newark Lake reached elevations higher than the MIS 2 highstand during at least two additional pluvial periods, MIS 16 and MIS 12, 10, or 8. These oldest lacustrine deposits do not have preserved shoreline features and are represented only by gravel lags, buried deposits, and buried soils with similar strong soil development. This sequence of middle and latest Pleistocene shorelines records a long-term pluvial history in this basin that remained internally drained for the last four or more pluvial cycles. Obtaining numerical ages from material within lacustrine deposits in the Great Basin can be challenging. Amino acid D/L values from gastropod shells and mollusk valves proved to be a valuable tool to correlate lacustrine deposits within Newark Valley. Comparison of soils and geomorphology results to independent 36 Cl cosmogenic nuclide ages from a different study indicated unexpected changes in rates of soil development during the past ~200,000 yr and suggested that common stratigraphic changes in lake stratigraphy could obscure incremental changes in soil development and/or complicate 36 Cl cosmogenic nuclide age estimates.