English

Magnetic Dynamo Driven by Inertial Waves

Fluid Dynamics 2026-08-06 v1 Earth and Planetary Astrophysics Solar and Stellar Astrophysics Geophysics

Abstract

We demonstrate, by studying precession-driven flows, that inertial wave hydrodynamic turbulence can drive a robust magnetic dynamo action. Motivated by the stronger damping of large-scale geostrophic vortices in rapidly rotating planetary and stellar interiors, we introduce a controlled damping of the vortices, which usually accompany inertial wave turbulence and feed on wave energy. It is shown that even a small vortex damping results in a significant increase of the growth rate of the dynamo due to inertial waves in the kinematic regime, allowing it to persist for magnetic Prandtl numbers as low as Pm103Pm \sim 10^{-3} and Poincar\'e numbers Po0.025Po\sim 0.025. These critical values of PoPo and PmPm for the dynamo onset decrease with increasing Reynolds number. The onset and growth of the dynamo appear to correlate with the coherent fluctuations of kinetic helicity. Spectral analysis shows that magnetic energy growth is primarily due to inertial-wave-induced induction over a broad range of scales. These results establish inertial waves as an efficient mechanism for magnetic field amplification in rapidly rotating low-PmPm flows relevant to planetary and stellar interiors.

Cite

@article{arxiv.2608.06086,
  title  = {Magnetic Dynamo Driven by Inertial Waves},
  author = {A. Mishra and G. Mamatsashvili and M. Le Bars and A. J. Barker and F. Stefani},
  journal= {arXiv preprint arXiv:2608.06086},
  year   = {2026}
}

Comments

9 pages (including End Matter), 8 figures, submitted to Physical Review Letters