Inverse transfer of magnetic helicity in direct numerical simulations of compressible isothermal turbulence: scaling laws
Jean-Mathieu Teissier, Wolf-Christian M\"uller

TL;DR
This study investigates how magnetic helicity inversely transfers in compressible MHD turbulence through simulations, revealing the influence of compressibility and turbulence driving mechanisms on spectral scaling laws.
Contribution
It demonstrates how compressibility affects magnetic helicity transfer and scaling laws, extending incompressible turbulence results to supersonic regimes with variable adjustments.
Findings
Magnetic helicity spectra flatten with increased compressibility.
Compressively-driven turbulence shows significant deviations from incompressible cases.
Theoretical models from incompressible turbulence can be adapted for supersonic turbulence.
Abstract
The inverse transfer of magnetic helicity is investigated through direct numerical simulations of large-scale-mechanically-driven turbulent flows in the isothermal ideal magnetohydrodynamics (MHD) framework. The mechanical forcing is either purely solenoidal or purely compressive and the turbulent steady-states considered exhibit root mean square (RMS) Mach numbers 0.1 M 11. A continuous small-scale electromotive forcing injects magnetic helical fluctuations, which lead to the build-up of ever larger magnetic structures. Spectral scaling exponents are observed which, for low Mach numbers, are consistent with previous research done in the incompressible case. Higher compressibility leads to flatter magnetic helicity scaling exponents. The deviations from the incompressible case are comparatively small for solenoidally-driven turbulence, even at high Mach numbers, as…
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