Climatic/Hydrologic Oscillations since 155,000 yr B.P. at Owens Lake, California, Reflected in Abundance and Stable Isotope Composition of Sediment Carbonate

Sediment grain size, carbonate content, and stable isotopes in 70-cm-long (∼1500-yr) channel samples from Owens Lake core OL-92 record many oscillations representing climate change in the eastern Sierra Nevada region since 155,000 yr B.P. To first order, the records match well the marine δ18O record...

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Published inQuaternary research Vol. 48; no. 1; pp. 58 - 68
Main Authors Menking, Kirsten M., Bischoff, James L., Fitzpatrick, John A., Burdette, James W., Rye, Robert O.
Format Journal Article
LanguageEnglish
Published New York, USA Cambridge University Press 01.07.1997
Elsevier Inc
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Abstract Sediment grain size, carbonate content, and stable isotopes in 70-cm-long (∼1500-yr) channel samples from Owens Lake core OL-92 record many oscillations representing climate change in the eastern Sierra Nevada region since 155,000 yr B.P. To first order, the records match well the marine δ18O record. At Owens Lake, however, the last interglaciation appears to span the entire period from 120,000 to 50,000 yr B.P., according to our chronology, and was punctuated by numerous short periods of wetter conditions during an otherwise dry climate. Sediment proxies reveal that the apparent timing of glacial–interglacial transitions, notably the penultimate one, is proxy-dependent. In the grain-size and carbonate-content records this transition is abrupt and occurs at ∼120,000 yr B.P. In contrast, in the isotopic records the transition is gradual and occurs between 145,000 and 120,000 yr B.P. Differences in timing of the transition are attributed to variable responses by proxies to climate change.
AbstractList Sediment grain size, carbonate content, and stable isotopes in 70-cm-long (∼1500-yr) channel samples from Owens Lake core OL-92 record many oscillations representing climate change in the eastern Sierra Nevada region since 155,000 yr B.P. To first order, the records match well the marine δ18O record. At Owens Lake, however, the last interglaciation appears to span the entire period from 120,000 to 50,000 yr B.P., according to our chronology, and was punctuated by numerous short periods of wetter conditions during an otherwise dry climate. Sediment proxies reveal that the apparent timing of glacial–interglacial transitions, notably the penultimate one, is proxy-dependent. In the grain-size and carbonate-content records this transition is abrupt and occurs at ∼120,000 yr B.P. In contrast, in the isotopic records the transition is gradual and occurs between 145,000 and 120,000 yr B.P. Differences in timing of the transition are attributed to variable responses by proxies to climate change.
Sediment grain size, carbonate content, and stable isotopes in 70-cm-long ( similar to 1500-yr) channel samples from Owens Lake core OL-92 record many oscillations representing climate change in the eastern Sierra Nevada region since 155,000 yr B.P. To first order, the records match well the marine delta super(18)O record. At Owens Lake, however, the last interglaciation appears to span the entire period from 120,000 to 50,000 yr B.P., according to our chronology, and was punctuated by numerous short periods of wetter conditions during an otherwise dry climate. Sediment proxies reveal that the apparent timing of glacial-interglacial transitions, notably the penultimate one, is proxy-dependent. In the grain-size and carbonate-content records this transition is abrupt and occurs at 120,000 yr B.P. In contrast, in the isotopic records the transition is gradual and occurs between 145,000 and 120,000 yr B. P. Differences in timing of the transition are attributed to variable responses by proxies to climate change.
Sediment grain size, carbonate content, and stable isotopes in 70-cm-long (∼1500-yr) channel samples from Owens Lake core OL-92 record many oscillations representing climate change in the eastern Sierra Nevada region since 155,000 yr B.P. To first order, the records match well the marine δ 18 O record. At Owens Lake, however, the last interglaciation appears to span the entire period from 120,000 to 50,000 yr B.P., according to our chronology, and was punctuated by numerous short periods of wetter conditions during an otherwise dry climate. Sediment proxies reveal that the apparent timing of glacial–interglacial transitions, notably the penultimate one, is proxy-dependent. In the grain-size and carbonate-content records this transition is abrupt and occurs at ∼120,000 yr B.P. In contrast, in the isotopic records the transition is gradual and occurs between 145,000 and 120,000 yr B.P. Differences in timing of the transition are attributed to variable responses by proxies to climate change.
Author Rye, Robert O.
Burdette, James W.
Menking, Kirsten M.
Fitzpatrick, John A.
Bischoff, James L.
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DocumentTitleAlternate PLEISTOCENE OSCILLATIONS OF OWENS LAKE, CA
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Issue 1
Keywords Geochronology
Palaeogeography
Glacial features
Oxygen 18
Climatic variation
Isotope analysis
Carbonate
Lacustrine sediment
Grain size distribution
Interglacial
Pleistocene
Language English
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References_xml – volume: K-3
  start-page: 241
  year: 1987
  end-page: 260
  ident: QR971898C6
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  publication-title: The geology of North America
  contributor:
    fullname: Thompson
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    fullname: Ruddiman
– ident: S0033589400032816_ref60
  doi: 10.1126/science.258.5080.255
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Snippet Sediment grain size, carbonate content, and stable isotopes in 70-cm-long (∼1500-yr) channel samples from Owens Lake core OL-92 record many oscillations...
Sediment grain size, carbonate content, and stable isotopes in 70-cm-long ( similar to 1500-yr) channel samples from Owens Lake core OL-92 record many...
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cambridge
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StartPage 58
SubjectTerms America
Bgi / Prodig
Freshwater
Physical geography
United States of America
Title Climatic/Hydrologic Oscillations since 155,000 yr B.P. at Owens Lake, California, Reflected in Abundance and Stable Isotope Composition of Sediment Carbonate
URI https://www.cambridge.org/core/product/identifier/S0033589400032816/type/journal_article
https://dx.doi.org/10.1006/qres.1997.1898
https://search.proquest.com/docview/16442824
Volume 48
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