Rapid change in high-elevation precipitation patterns of western North America during the Middle Eocene Climatic Optimum (MECO)

Clicks: 3
ID: 295075
2015
Article Quality & Performance Metrics
Overall Quality
Not rated
Combines reader engagement with the AI quality analysis. This article has not been analysed, so there is no overall score — reader engagement is measured and shown alongside.
AI Quality Assessment
Not analyzed
Readership in this journal
Emerging

Ranked #1,073 of 8,486 articles by views in american journal of science

Most read Least read

Bar heights use a square-root scale. Only the 120 most-read articles are drawn; the journal has 8,486 in total.

Mint this article as an NFT
Not yet minted

Create a permanent, verifiable on-chain record of this article on the Scimatic Network. The NFT is held in your Journament account, and you can withdraw it to your own wallet at any time.

5 SUSD one-off · no wallet required
Abstract
We present Eocene terrestrial oxygen (δ^18^O), carbon (δ^13^C), and strontium (^87^Sr/^86^Sr) isotope lake and paleosol records from two high elevation sites on the western North American plateau. These records represent terrestrial stable isotope evidence of the Middle Eocene Climatic Optimum (MECO) an enigmatic and rapid global warming event that interrupted protracted Eocene global cooling at around 40.0 Ma. Revised stratigraphy based on 15 ^40^Ar/^39^Ar ages from air-fall and water-lain ash in the Elko basin (Nevada) places evaporative lake conditions followed by rapid (\<150 ka) freshening and a large (14-15 ‰) negative shift in δ^18^O of lake water between 40.2 Ma and 39.4 Ma, right at the climax of MECO. Prior to MECO high δ^18^O and δ^13^C values in well-laminated organic-rich shales are consistent with high evaporation-to-precipitation ratios, lack of lake overturn, persistent lake stratification, and moderate to high lake salinity. However, a step-wise large magnitude (\>20‰) decrease in δ^13^C values already during the pre-MECO cooling phase, requires that in contrast to pre-MECO climate conditions, MECO temperature seasonality in western North America was sufficiently strong to (re-)establish regular lake overturn. The rate and magnitude of the rapid negative lacustrine δ^18^O shift during MECO in the Elko lake basin is inconsistent with a simple scenario of regional surface uplift affecting decrease of δ^18^O in precipitation and associated lake freshening. We consider the overall negative shift in δ^18^O of non-evaporatively ^18^O-enriched lake waters (−9.3 ±1.8 ‰) between the 42 to 43 Ma Elko Formation and the *ca*. 38 Ma base of the Indian Well Formation to be composed of a *ca*. 3 to 4 permil decrease in δ^18^O of lake carbonate as a consequence of post-MECO cooling and an additional *ca*. 5 to 6 permil decrease in δ^18^O of riverine lake input as a response to 43 to 38 Ma surface uplift. When combined with isotope-enabled global circulation model results, the Elko lake data further suggest that once critical elevations were attained a change in upstream moisture transport including strengthening of monsoonal summer rainfall on the (south-)eastern flanks of the Cordillera and a larger fraction of air parcel trajectories to the (eastern) lee of the Cordilleran highlands that had passed over the (western) continental interior were responsible for the rapid middle Eocene decrease in δ^18^O of precipitation in the central Cordilleran hinterland.
Reference Key
openalex_W2106312171 Use this key to autocite in the manuscript while using SciMatic Manuscript Manager or Thesis Manager
Authors Andreas Mulch, C. Page Chamberlain, Michael A. Cosca, Christian Teyssier, Katharina Methner, Michael T. Hren, Stephan A. Graham
Journal american journal of science
Year 2015
DOI
10.2475/04.2015.02
URL
Keywords Keywords not found

Citations

No citations found. To add a citation, contact the admin at info@scimatic.org

No comments yet. Be the first to comment on this article.