As a matter of dynamical range -- scale dependent energy dynamics in MHD turbulence
arXiv:2211.09750 · doi:10.3847/2041-8213/acaea7
Abstract
Magnetized turbulence is ubiquitous in many astrophysical and terrestrial plasmas but no universal theory exists. Even the detailed energy dynamics in magnetohydrodynamic (MHD) turbulence are still not well understood. We present a suite of subsonic, super-Alfvénic, high plasma-beta MHD turbulence simulations that only vary in their dynamical range, i.e., in their separation between the large-scale forcing and dissipation scales, and their dissipation mechanism (implicit large eddy simulation, ILES, versus and direct numerical simulation, DNS). Using an energy transfer analysis framework we calculate the effective, numerical viscosities and resistivities and demonstrate and that all ILES calculations of MHD turbulence are resolved and correspond to an equivalent visco-resistive MHD turbulence calculation. Increasing the number of grid points used in an ILES corresponds to lowering the dissipation coefficients, i.e., larger (kinetic and magnetic) Reynolds numbers for a constant forcing scale. Independently, we use this same framework to demonstrate that -- contrary to hydrodynamic turbulence -- the cross-scale energy fluxes are not constant in MHD turbulence. This applies both to different mediators (such as cascade processes or magnetic tension) for a given dynamical range as well as to a dependence on the dynamical range itself, which determines the physical properties of the flow. We do not observe any indication of convergence even at the highest resolution (largest Reynolds numbers) simulation at cells, calling into question whether an asymptotic regime in MHD turbulence exists, and, if so, what it looks like.
under review, comments welcome
References in corpus (11)
- The NumPy array: a structure for efficient numerical computation
- Athena: A New Code for Astrophysical MHD
- The Athena++ Adaptive Mesh Refinement Framework: Design and Magnetohydrodynamic Solvers
- Simulations of nonhelical hydromagnetic turbulence
- Numerical simulations of compressively driven interstellar turbulence: I. Isothermal gas
- Simulations of Magnetorotational Turbulence with a Higher-Order Godunov Scheme
- Energy transfer in compressible magnetohydrodynamic turbulence
- MHD Turbulence
- Dynamic Alignment and Exact Scaling Laws in MHD Turbulence
- Universality of the Small-Scale Dynamo Mechanism
- Interaction of the magnetorotational instability with hydrodynamic turbulence in accretion disks
Cited by in corpus (11)
- Cosmic ray transport in large-amplitude turbulence with small-scale field reversals
- Figuring Out Gas & Galaxies In Enzo (FOGGIE) VI: The Circumgalactic Medium of Galaxies is Supported in an Emergent, Non-Hydrostatic Equilibrium
- Plasmoid Instability in the Multiphase Interstellar Medium
- The spectrum of magnetized turbulence in the interstellar medium
- Numerical viscosity and resistivity in MHD turbulence simulations
- Fundamental MHD scales -- II: the kinematic phase of the supersonic small-scale dynamo
- Comparison of magnetic diffusion and reconnection in ideal and resistive relativistic magnetohydrodynamics, ideal magnetodynamics, and resistive force-free electrodynamics
- XMAGNET: Velocity structure functions of active galactic nucleus-driven turbulence in the multiphase intracluster medium
- Gas phase Elemental abundances in Molecular cloudS (GEMS). X. Observational effects of turbulence on the chemistry of molecular clouds
- Capturing Turbulence with Numerical Dissipation: a Simple Dynamical Model for Unresolved Turbulence in Hydrodynamic Simulations
- Taking control of compressible modes: bulk viscosity and the turbulent dynamo