Energy balance and Alfv\'en Mach numbers in compressible magnetohydrodynamic turbulence with a large-scale magnetic field
James R. Beattie, Mark R. Krumholz, Raphael Skalidis, Christoph, Federrath, Amit Seta, Roland M. Crocker, Philip Mocz, Neco Kriel

TL;DR
This paper investigates the energy balance in compressible MHD turbulence with a large-scale magnetic field, revealing the conditions for energy equipartition and the relationship between Alfvén Mach numbers, supported by numerical simulations.
Contribution
It introduces a new analysis of the magnetic coupling term and its energy equipartition with turbulent kinetic energy, providing a parameter-free model validated by simulations.
Findings
The rms magnetic coupling term is in energy equipartition with turbulent kinetic energy in sub-Alfvénic turbulence.
Sub-Alfvénic turbulence requires a strong large-scale magnetic field, leading to super-Alfvénic magnetic fluctuations.
Magnetic field fluctuations are significantly weaker than velocity fluctuations in the sub-Alfvénic regime.
Abstract
Energy equipartition is a powerful theoretical tool for understanding astrophysical plasmas. It is invoked, for example, to measure magnetic fields in the interstellar medium (ISM), as evidence for small-scale turbulent dynamo action, and, in general, to estimate the energy budget of star-forming molecular clouds. In this study we motivate and explore the role of the volume-averaged root-mean-squared (rms) magnetic coupling term between the turbulent, and large-scale, fields, . By considering the second moments of the energy balance equations we show that the rms coupling term is in energy equipartition with the volume-averaged turbulent kinetic energy for turbulence with a sub-Alfv\'enic large-scale field. Under the assumption of exact energy equipartition between these terms,…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Solar and Space Plasma Dynamics · Ionosphere and magnetosphere dynamics
