4.7 Article

Reconstruction of the chaotic behavior of the Solar System from geologic records

Journal

EARTH AND PLANETARY SCIENCE LETTERS
Volume 537, Issue -, Pages -

Publisher

ELSEVIER
DOI: 10.1016/j.epsl.2020.116168

Keywords

orbital cycle; Solar System chaos; Earth-Mars secular resonance; monsoon; carbon cycle

Funding

  1. Japan Society for the Promotion of Science [09J08755, 12J07767, 2680026]
  2. Overseas Internship Program for Outstanding Young Earth and Planetary Researchers
  3. Grants-in-Aid for Scientific Research [12J07767, 09J08755] Funding Source: KAKEN

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Astronomical solutions for planetary orbits beyond several tens of million years (Myr) ago have large uncertainties due to the chaotic nature of the Solar System, mainly Myr-scale cycles related with the Earth-Mars secular resonance. Our only accessible archive for unraveling the Earth's orbital variations in the geologic past are sedimentological records, yet their reliability and uncertainties are still debated. Here, we describe Myr-scale orbital signals of early Mesozoic monsoon records from two different sedimentary settings (lake level records of the equatorial Pangea and biogenic silica burial flux of deep-sea Panthalassa), along with a marine carbon isotope compilation. Although most of the dominant multi-Myr cycles are not exactly of the same frequency, 1.8Myr cycles during similar to 216-210Ma are detected from the two mutually-independent sedimentary settings, and differ from available astronomical solutions. This finding provides not only convincing evidence for the chaotic nature of the Solar System in the geological past, but also additional constraints on astronomical models. On the other hand, besides the orbital cycles, tectonic forcing and consequent climatic perturbations could also have affected the proxies on multi-Myr timescales during episodes of large igneous province emplacement, such as Siberian trap volcanism (252-245Ma), Wrangellia (233-225Ma), Central Atlantic Magmatic Province (202-200Ma), and Karoo-Ferrar volcanism (184-180Ma). If we can distinguish orbital signals from other effects, such as tectonic and volcanic processes, the multi-Myr cycles in geologic records have the potential to reconstruct the chaotic evolution of the Solar System. (C) 2020 Elsevier B.V. All rights reserved.

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