A stable, accurate methodology for high mach number, strong magnetic field mhd turbulence with adaptive mesh refinement: Resolution and refinement studies

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Abstract

Performing a stable, long-duration simulation of driven MHD turbulence with a high thermal Mach number and a strong initial magnetic field is a challenge to high-order Godunov ideal MHD schemes because of the difficulty in guaranteeing positivity of the density and pressure. We have implemented a robust combination of reconstruction schemes, Riemann solvers, limiters, and constrained transport electromotive force averaging schemes that can meet this challenge, and using this strategy, we have developed a new adaptive mesh refinement (AMR) MHD module of the ORION2 code. We investigate the effects of AMR on several statistical properties of a turbulent ideal MHD system with a thermal Mach number of 10 and a plasma β0 of 0.1 as initial conditions; our code is shown to be stable for simulations with higher Mach numbers () and smaller plasma beta (β0 = 0.0067) as well. Our results show that the quality of the turbulence simulation is generally related to the volume-averaged refinement. Our AMR simulations show that the turbulent dissipation coefficient for supersonic MHD turbulence is about 0.5, in agreement with unigrid simulations. © 2012. The American Astronomical Society. All rights reserved.

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Li, P. S., Martin, D. F., Klein, R. I., & McKee, C. F. (2012). A stable, accurate methodology for high mach number, strong magnetic field mhd turbulence with adaptive mesh refinement: Resolution and refinement studies. Astrophysical Journal, 745(2). https://doi.org/10.1088/0004-637X/745/2/139

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