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MHD simulations of the magnetorotational instability in a shearing box with zero net flux: the case Pm=4

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arxiv 1004.2382 v1 pith:MVZO4K6Q submitted 2010-04-14 astro-ph.HE astro-ph.SR

MHD simulations of the magnetorotational instability in a shearing box with zero net flux: the case Pm=4

classification astro-ph.HE astro-ph.SR
keywords reynoldssimulationstransportangularfluxinstabilitymagneticmagnetorotational
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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This letter investigates the transport properties of MHD turbulence induced by the magnetorotational instability at large Reynolds numbers Re when the magnetic Prandtl number Pm is larger than unity. Three MHD simulations of the magnetorotational instability (MRI) in the unstratified shearing box with zero net flux are presented. These simulations are performed with the code Zeus and consider the evolution of the rate of angular momentum transport as Re is gradually increased from 3125 to 12500 while simultaneously keeping Pm=4. To ensure that the small scale features of the flow are well resolved, the resolution varies from 128 cells per disk scaleheight to 512 cells per scaleheight. The latter constitutes the highest resolution of an MRI turbulence simulation to date. The rate of angular momentum transport, measured using the alpha parameter, depends only very weakly on the Reynolds number: alpha is found to be about 0.007 with variations around this mean value bounded by 15% in all simulations. There is no systematic evolution with Re. For the best resolved model, the kinetic energy power spectrum tentatively displays a power-law range with an exponent -3/2, while the magnetic energy is found to shift to smaller and smaller scales as the magnetic Reynolds number increases. A couple of different diagnostics both suggest a well-defined injection length of a fraction of a scaleheight. The results presented in this letter are consistent with the MRI being able to transport angular momentum efficiently at large Reynolds numbers when Pm=4 in unstratified zero net flux shearing boxes.

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  1. Transport of angular momentum and chemical elements by the MRI dynamo in stellar radiative zones

    astro-ph.SR 2026-07 conditional novelty 6.0

    Stratified MRI dynamo simulations give scaling laws for angular-momentum and chemical transport in stellar radiative zones, with Maxwell stress dominating and chemical mixing more strongly suppressed by stratification.