Dynamo action driven by precessional turbulence
Creators
- 1. Institute of Fluid Dynamics, Helmholtz-Zentrum Dresden-Rossendorf, Bautzner Landstraße 400, 01328 Dresden, Germany
- 2. Institute of Process Engineering and Environmental Technology, Technische Universität Dresden, 01062 Dresden, Germany
- 3. Department of Fluid Mechanics, Universitat Politécnica de Catalunya ⋅ BarcelonaTech (UPC), Barcelona 08034, Spain
- 4. E. Kharadze Georgian National Astrophysical Observatory, Abastumani 0301, Georgia
- 5. Department of Applied Mathematics, School of Mathematics, University of Leeds, Leeds LS2 9JT, United Kingdom
Description
We reveal and analyze an efficient magnetic dynamo action due to precession-driven hydrodynamic turbulence in the local model of a precessional flow, focusing on the kinematic stage of this dynamo. The growth rate of the magnetic field monotonically increases with the Poincaré number , characterizing precession strength, and the magnetic Prandtl number , equal to the ratio of viscosity to resistivity, for the considered ranges of these parameters. The critical for the dynamo onset decreases with increasing . To understand the scale-by-scale evolution (growth) of the precession dynamo and its driving processes, we perform spectral analysis by calculating the spectra of magnetic energy and of different terms in the induction equation in Fourier space. To this end, we decompose the velocity field of precession-driven turbulence into two-dimensional (2D) vortical and three-dimensional (3D) inertial wave modes. It is shown that the dynamo operates across a broad range of scales and exhibits a remarkable transition from a primarily vortex-driven regime at lower to a more complex regime at higher where it is driven jointly by vortices, inertial waves, and the shear of the background precessional flow. Vortices and shear drive the dynamo mostly at large scales comparable to the flow system size, and at intermediate scales, while at smaller scales it is mainly driven by inertial waves. This study can be important not only for understanding the magnetic dynamo action in precession-driven flows, but also in a general context of flows where vortices emerge and govern the flow dynamics and evolution.
Additional details
Identifiers
- DOI
- 10.1103/PhysRevE.109.065101;
- arXiv
- arXiv:2312.06835;
- Crossref Funder ID
- 10.13039/501100007601; 10.13039/501100004801; 10.13039/501100000266; 10.13039/501100000271; 10.13039/100012112;
Publishing Information
- Journal Title
- Physical Review E
- Journal Volume
- 109
- Journal Issue
- 6
- Journal Page Range
- 8 pgs.
- ISSN
- 1089-3787
INIS
- Country of Publication
- United States
- Country of Input or Organization
- International Atomic Energy Agency (IAEA)
- Subject category
- S30: DIRECT ENERGY CONVERSION; S71: CLASSICAL AND QUANTUM MECHANICS, GENERAL PHYSICS;
- Descriptors DEI
- FLUID FLOW; GROWTH; HYDRODYNAMICS; MAGNETIC FIELDS; MAGNETIC REYNOLDS NUMBER; PRECESSION; SHEAR; TURBULENCE; VISCOSITY; VORTICES
- Descriptors DEC
- DIMENSIONLESS NUMBERS; FLUID MECHANICS; MECHANICS; REYNOLDS NUMBER
Optional Information
- Copyright
- ©2024 American Physical Society
- Contract/Grant/Project number
- 787544; FR-23-1277; EP/R014604/1; ST/S000275/1; ST/W000873/1
- Notes
- Contact Email: v.kumar@hzdr.de; Record automatically processed
- Funding organization
- Horizon 2020; Shota Rustaveli National Science Foundation; Engineering and Physical Sciences Research Council; Science and Technology Facilities Council; Isaac Newton Institute for Mathematical Sciences