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Throughout its ~4.5 billion year history, the Earth has experienced periods of warming and cooling. However, the current drastic increase in global temperatures is well outside of the Earth’s cyclic norms, and evidence for human-caused global climate change is compelling. Paleoclimatology, the study of ancient climate conditions, provides ample evidence for human-caused global climate change by comparing recent conditions with those in the past.
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Using Generative Art to Convey Past and Future Climate Transitions
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Orbital (Hydro)Climate Variability in the Ice-Free Early Eocene Arctic.

Chris D Fokkema1, Henk Brinkhuis1,2, Francien Peterse1

  • 1Department of Earth Sciences Faculty of Geoscience Utrecht University Utrecht The Netherlands.

Paleoceanography and Paleoclimatology
|November 29, 2024
PubMed
Summary

Early Eocene Arctic climate shows orbital control on sea surface temperature and precipitation, with significant polar amplification of global temperature variability.

Keywords:
ACEXArctic OceanTEX86early eocenehydrological cyclemilankovitch cycles

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Area of Science:

  • Paleoclimatology
  • Arctic Oceanography
  • Geochemistry

Background:

  • Early Eocene (∼56-48 Ma) offers a unique window into polar climate dynamics without ice sheets.
  • Understanding orbital variability is crucial for reconstructing past climate sensitivity.

Purpose of the Study:

  • To investigate early Eocene Arctic climate dynamics and orbital variability using sediment cores.
  • To determine the influence of orbital cycles (precession, obliquity, eccentricity) on Arctic sea surface temperatures and hydrological processes.

Main Methods:

  • High-resolution analysis of lipid biomarkers (GDGTs) and palynological assemblages from Arctic Coring Expedition (ACEX) sediments.
  • Reconstruction of sea surface temperature (SST) and terrestrial/marine productivity signals.

Main Results:

  • Cyclic signals linked to 20-kyr precession, 40-kyr obliquity, and 100-kyr eccentricity were identified.
  • Obliquity and precession influenced SST by up to 1.4°C and 0.5°C, respectively.
  • Eccentricity-driven SST variability (∼0.8°C) showed pronounced polar amplification compared to deep ocean and tropical records.

Conclusions:

  • Orbital forcing controlled Arctic precipitation and nutrient supply, with regional hydrological processes playing a key role.
  • Seasonal GDGT bias was confirmed by matching precession and obliquity amplitudes with local insolation.
  • Early Eocene polar regions experienced significant temperature amplification, even without ice-albedo feedbacks.