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NARROW
GeoRef Subject
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all geography including DSDP/ODP Sites and Legs
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Africa
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Central Africa
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Angola (1)
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Congo (1)
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Southern Africa
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Karoo Basin (2)
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Far East
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Cenozoic
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Tertiary
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Pliocene (1)
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Paleogene
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Oligocene (3)
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Paleocene
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upper Paleocene (1)
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Wasatch Formation (2)
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Mesozoic
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Primary terms
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Africa
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Southern Africa
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Transvaal region (1)
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West Africa
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Asia
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Far East
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China
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Huang He (1)
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Australasia
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carbon
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middle Holocene (2)
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upper Quaternary (3)
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Tertiary
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upper Miocene (1)
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Pliocene (1)
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Paleogene
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Willwood Formation (4)
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Wasatch Formation (2)
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Invertebrata
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Mesozoic
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Albian
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lower Albian (1)
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Aptian (1)
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McMurray Formation (2)
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Mesa Rica Sandstone (1)
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Spirit River Formation (2)
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Mancos Shale (1)
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Nenjiang Formation (1)
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Qingshankou Formation (1)
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Upper Cretaceous
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Blackhawk Formation (2)
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Campanian (1)
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Castlegate Sandstone (3)
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Cenomanian (1)
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Gallup Sandstone (1)
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Gulfian
-
Aguja Formation (1)
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-
Javelina Formation (1)
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Maestrichtian (1)
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Turonian (1)
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Williams Fork Formation (2)
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-
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Jurassic (2)
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Kayenta Formation (2)
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Triassic
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Middle Triassic (1)
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Upper Triassic (1)
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-
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metals
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alkaline earth metals
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beryllium
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Be-10 (2)
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strontium
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Sr-87/Sr-86 (1)
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aluminum
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rare earths
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neodymium
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Mexico
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Ocean Drilling Program
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ocean floors (7)
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paleoclimatology (7)
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Paleozoic
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Devonian
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Old Red Sandstone (1)
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Permian (1)
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petroleum
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natural gas (2)
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Plantae
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Sphenopsida
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Spermatophyta
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upper Precambrian
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sandstone (21)
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avulsion
A new method to evaluate the power ratio distributions of astronomical signals: A case study from Upper Cretaceous terrestrial sediments
Lateral and vertical characteristics of floodplain aggradation cycles in the lower Eocene Willwood Formation, Bighorn Basin, Wyoming, USA
Avulsion dynamics determine fluvial fan morphology in a cellular model
Natural levees increase in prevalence in the backwater zone: Coastal Trinity River, Texas, USA: COMMENT
Fluvial reservoir architecture, directional heterogeneity and continuity, recognizing incised valley fills, and the case for nodal avulsion on a distributive fluvial system: Kern River field, California
Reconstructing backwater hydrodynamics from fluvial-deltaic deposits using stratigraphic inversion: An example from the Tullig Sandstone, Western Irish Namurian Basin, County Clare, Ireland
How did the world’s largest submarine fan in the Bay of Bengal grow and evolve at the subfan scale?
Quantifying river avulsion activity from satellite remote sensing: Implications for how avulsions contribute to floodplain stratigraphy in foreland basins
Rivers in reverse: Upstream-migrating dechannelization and flooding cause avulsions on fluvial fans
ABSTRACT Lake Coyote, California, which formed in one of five basins along the Mojave River, acted both as a part of the Lake Manix basin and, after the formation of Afton Canyon and draining of Lake Manix ca. 24.5 calibrated (cal) ka, a side basin that was filled episodically for the next 10,000 yr. As such, its record of lake level is an important counterpart to the record of the other terminal basin, Lake Mojave, following the draining of Lake Manix. We studied lake and fluvial deposits and their geomorphology and identified five principal periods of recurring lakes in the Coyote basin by dating mollusks. Several of these periods in detail consist of multiple lake-rise pulses, for which we identified specific fluvial deposits that represent the Mojave River entering the basin. The pulsed record of rapid lake rise and decline is interpreted as switching of the Mojave River between Lake Coyote and Lake Mojave. A composite lake record for both basins shows nearly continuous lake maintenance by the Mojave River from 24.5 cal ka to ca. 14 cal ka. One potential gap in the lake record, ca. 22.7–21.8 cal ka, may indicate either temporary river routing to yet another basin or a dry climatic period. The Mojave River discharge was sufficient to maintain at least one terminal lake throughout most of the Last Glacial Maximum and deglacial periods, indicating that paleoclimate was moist and/or cool well into the Bølling-Allerød and that the lake records may not be sensitive to variations from moderate to high discharge. Nuances of lake-level changes in both the Coyote and Mojave basins are difficult to interpret as paleoclimatic events because the current chronologic control on lake levels from nearshore deposits does not provide the necessary precision. Mojave River avulsion leading to flow to Coyote basin may have been influenced by rupture on a dextral-oblique fault. Earliest post–Lake Manix stream deposits of the Mojave River leading to the Coyote basin are faulted, and most subsequent streams were confined to the downthrown fault block. This fault rupture and possible enhanced river routes to Lake Coyote, rather than Lake Mojave, are bracketed by dated beach deposits to the period ca. 20–19 cal ka. Later, headward erosion through the fluvial plain by the Mojave River eliminated flow to Coyote basin after ca. 14 cal ka and completed incision of the plain after ca. 12 cal ka.