Lagrangian statistics of a shock-driven turbulent dynamo in decaying turbulence
arXiv:2301.06033 · doi:10.1093/mnras/stad545
Abstract
Small-scale fluctuating magnetic fields of order G are observed in supernova shocks and galaxy clusters, where its amplification is likely caused by the Biermann battery mechanism. However, these fields cannot be amplified further without the turbulent dynamo, which generates magnetic energy through the stretch-twist-fold (STF) mechanism. Thus, we present here novel three-dimensional magnetohydrodynamic (MHD) simulations of a laser-driven shock propagating into a stratified, multiphase medium, to investigate the post-shock turbulent magnetic field amplification via the turbulent dynamo. The configuration used here is currently being tested in the shock tunnel at the National Ignition Facility (NIF). In order to probe the statistical properties of the post-shock turbulent region, we use tracers to track its evolution through the Lagrangian framework, thus providing a high-fidelity analysis of the shocked medium. Our simulations indicate that the growth of the magnetic field, which accompanies the near-Saffman kinetic energy decay ( without turbulence driving, exhibits slightly different characteristics as compared to periodic box simulations. Seemingly no distinct phases exist in its evolution, because the shock passage and time to observe the magnetic field amplification during the turbulence decay are very short ( of a turbulent turnover time). Yet, the growth rate is still consistent with those expected for compressive (curl-free) turbulence driving in subsonic, compressible turbulence. Phenomenological understanding of the dynamics of the magnetic and velocity fields are also elucidated via Lagrangian frequency spectra, which are consistent with the expected inertial range scalings in the Eulerian-Lagrangian bridge.
15 pages, 19 figures. Accepted in MNRAS. Comments are welcome
References in corpus (31)
- The Statistics of Supersonic Isothermal Turbulence
- On the Star Formation Efficiency of Turbulent Magnetized Clouds
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
- Multifractal statistics of Lagrangian velocity and acceleration in turbulence
- Dynamic Alignment in Driven Magnetohydrodynamic Turbulence
- A robust numerical scheme for highly compressible magnetohydrodynamics: Nonlinear stability, implementation and tests
- Nonhelical inverse transfer of a decaying turbulent magnetic field
- Magnetic field amplification in turbulent astrophysical plasmas
- The sonic scale revealed by the world's largest supersonic turbulence simulation
- Role of cross helicity in magnetohydrodynamic turbulence
- Comparing Numerical Methods for Isothermal Magnetized Supersonic Turbulence
- Nonlinear Diffusive Shock Acceleration with Magnetic Field Amplification
- Classes of hydrodynamic and magnetohydrodynamic turbulent decay
- The Turbulent Dynamo in Highly Compressible Supersonic Plasmas
- Thermodynamic ground states of platinum metal nitrides
- Turbulent dynamo in a conducting fluid and partially ionized gas
- MHD Turbulence
- Turbulence from localized random expansion waves
- On the Nature of Incompressible Magnetohydrodynamic Turbulence
- Turbulent dynamo in the two-phase interstellar medium
- Magnetic Fields in the Formation of the First Stars. I. Theory vs. Simulation
- Magnetic field amplification by the Weibel instability at planetary and astrophysical high-Mach-number shocks
- Seed magnetic fields in turbulent small-scale dynamos
- On the parallel spectrum in MHD Turbulence
- Magnetic field amplification in supernova remnants
- Fundamental scales in the kinematic phase of the turbulent dynamo
- Efficient highly-subsonic turbulent dynamo and growth of primordial magnetic fields
- Nonlinear turbulent dynamo during gravitational collapse
- The link between solenoidal turbulence and slow star formation in G0.253+0.016
- Cosmic-ray pressure driven magnetic field amplification: dimensional, radiative and field orientation effects
- On the Inverse Transfer of (Non-)Helical Magnetic Energy in a Decaying Magnetohydrodynamic Turbulence