A

Precessional Climate Cyclicity on the Iberian margin: Miocene-recent

Abstract

IODP Expedition 397 recovered a continuous record of precessionally-paced lithological cycles to the base of the recovered section (~9.55 Ma) at Site U1587. On board ship, three intervals were selected for multi-disciplinary dissection of the cycles in time windows comprising three precessional cycles each ((early Pleistocene 2.284-2.345 Ma, late Pliocene 3.427-3.496 Ma, and late Miocene 5.638-5.5707 Ma). These three intervals are grounded in continuous XRF scanning that allows for a reliable astrochronology based largely on precessional variability. Carbonate cyclicity follows northern hemisphere precession throughout high carbonate content associated with high northern hemisphere summer insolation. The cycles cannot be explained solely by changes in carbonate production or preservation, as the clay-rich phases of the cycles are often expanded relative to the carbonate-rich phases. Sea surface temperature (SST) recorded by alkenone biomarkers shows fluctuations in tandem with the carbonate cycles. For the Pliocene and Pleistocene, higher carbonate correlates to warmer SST and interglacial conditions as inferred from stable isotope measurements. The pattern flips in the Messinian test interval, with high carbonate associated with colder and more glacial climate. Clay mineralogy shows cyclic fluctuations associated with changes in riverine and eolian inputs. High illite (high dust?) corresponds to high carbonate content in the Miocene and Pleistocene test intervals, while the opposite is observed for the Pliocene. An abrupt change in cycle spacing near the terminal Messinian likely records a tectonic event that perhaps influenced transport and deposition of the detrital components.

Authors 12

  1. Timothy D. Herbert corresponding

    Brown University

    Affiliation as printed

    Br own University,Earth, Environmental & Planetary Sciences, Providence, United States of America (timothy_herbert@brown.edu)

  2. Portuguese Sea and Atmosphere Institute

    Affiliation as printed

    Instituto Português do Mar e da Atmosfera, Portugal (atima.abrantes@ipma.pt)

  3. RWTH Aachen University

    Affiliation as printed

    Aachen University, Germany, (hannah.brooks@emr.rwth-aachen.de)

  4. José‐Abel Flores corresponding

    Universidad de Salamanca

    Affiliation as printed

    Universidad de Salamanca, Spain (flores@usal.es)

  5. David A Hodell corresponding

    University of Cambridge

    Affiliation as printed

    University of Cambridge, United Kingdom (dah73@cam.ac.uk)

  6. Columbia University

    Affiliation as printed

    Columbia University, United States of America (jmcmanus@ldeo.columbia.edu)

  7. Brown University

    Affiliation as printed

    Br own University,Earth, Environmental & Planetary Sciences, Providence, United States of America (timothy_herbert@brown.edu)

  8. Columbia University

    Affiliation as printed

    Columbia University, United States of America (jmcmanus@ldeo.columbia.edu)

  9. Peking University

    Affiliation as printed

    Peking University, People's Republic of China (xiaolei.pang@pku.edu.cn)

  10. Jiawang Wu corresponding
    Affiliation as printed

    Sun Hat-Sen University, People's Republic of China (wujiaw5@mail.sysu.edu.cn)

  11. Australian National University

    Affiliation as printed

    Australian National University, Australia (Jimin.yu@anu.edu.au)

  12. Texas A&M University

    Affiliation as printed

    International Ocean Discovery Program, Texas A&M University, United States of America (zarikian@iodp.tamu.edu)

Cited by 0 stored of 0

No patents citing this paper on Lens.org (checked 2026-10-06).

References 0