PulseExploreJournal ClubDebatesTrendingResearchersJournals
Instagram
HomeExploreJournal ClubTrending
Synapse
⌘+K
Synapse
May 9, 2026journal of Studies of the Earth’s Deep Interior0 citations

Geodynamo simulations spanning millennia in the physical conditions of Earth's core

View Full Paper
JAJulien Aubert

Key Points

  • This research aims to simulate the geodynamo process over millennia to understand Earth’s core dynamics and geomagnetic variations.
  • Simulation integrated over near 1700 years of physical time
  • Quasi-geostrophic, magneto-Archimedes-Coriolis force balance modeled
  • Validation against geomagnetic and geodetic observations from various sources.
  • Convective power level of approximately 3 TW is verified to account for geomagnetic variations
  • Simulation reveals interdecadal magneto-Coriolis waves contributing to geomagnetic variations around 60-year periods
  • Outer core electrical conductivity may be constrained using observed patterns of interannual magneto-Coriolis waves.

Abstract

A geodynamo simulation is presented where the Earth's core density, rotation rate, convective power and electrical conductivity are matched, while viscous losses are maintained minor in the force balance and power budget. Improving over earlier preliminary calculations, the simulation is integrated over near 1700 years in physical time, and realistically renders the time scale range between interannual hydromagnetic waves and secular convective motions. The solution has been obtained by gradually approaching these conditions along a path in model parameter space. A quasi-geostrophic, magneto-Archimedes-Coriolis (QG-MAC) force balance is confirmed, with the characteristic length scale of the system remaining near the planetary scale. Without the need for extrapolation, the morphology, variations and dynamics of the velocity, convective density anomaly and magnetic fields are in excellent quantitative agreement with geomagnetic and geodetic observations supplied over the past centuries by navigation, observatories and satellites. In particular, the simulation reveals the contribution of interdecadal magneto-Coriolis waves to geomagnetic variations in the vicinity of 60-yr periods. This direct validation of the convective geodynamo paradigm additionally offers a quantitative and first principle-based physical link between the observable signals and deep Earth geodynamic parameters. The model confirms that a convective power (or Ohmic dissipation) level near 3 TW is needed to account for the observed geomagnetic variations, and that the top of the core should be convectively neutral or unstable. Explaining the core-originated interannual to decadal variations of the length of day through electromagnetic core-mantle coupling requires a lower mantle conductance on the order of 10⁹ S. It may also become possible to constrain the outer core electrical conductivity from the observed patterns of interannual magneto-Coriolis waves. Finally, the simulation can be considered a reliable source of prior information for solving geomagnetic inverse and prediction problems.

Ask AI
Helpful
Bookmark
Share
View Full Paper

Cite This Study

Julien Aubert (2026) studied this question.

synapsesocial.com/papers/69fed021b9154b0b82877342https://doi.org/10.46298/jsedi.17790
Ask AI
Helpful
Bookmark
Share
View Full Paper