4.7 Article

Reconnection-Controlled Decay of Magnetohydrodynamic Turbulence and the Role of Invariants

期刊

PHYSICAL REVIEW X
卷 11, 期 4, 页码 -

出版社

AMER PHYSICAL SOC
DOI: 10.1103/PhysRevX.11.041005

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资金

  1. UK STFC studentship
  2. UK EPSRC [EP/R034737/1]
  3. EPSRC [EP/R034737/1] Funding Source: UKRI

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The article introduces a new theoretical picture of magnetically dominated, decaying turbulence, demonstrating through numerical simulations that the rate of turbulent decay is controlled by magnetic reconnection. Predictions for turbulence decay on reconnection timescales are obtained, while verifying the conservation of certain integral invariants in numerical simulations.
We present a new theoretical picture of magnetically dominated, decaying turbulence in the absence of a mean magnetic field. With direct numerical simulations, we demonstrate that the rate of turbulent decay is governed by the reconnection of magnetic structures, and not necessarily by ideal dynamics, as has previously been assumed. We obtain predictions for the magnetic-energy-decay laws by proposing that turbulence decays on reconnection timescales while respecting the conservation of certain integral invariants representing topological constraints satisfied by the reconnecting magnetic field. As is well known, the magnetic helicity is such an invariant for initially helical field configurations, but it does not constrain nonhelical decay, where the volume-averaged magnetic-helicity density vanishes. For such a decay, we propose a new integral invariant, analogous to the Loitsyansky and Saffman invariants of hydrodynamic turbulence, that expresses the conservation of the random (scaling as volume(1/2)) magnetic helicity contained in any sufficiently large volume. We verify that this invariant is indeed well conserved in our numerical simulations. Our treatment leads to novel predictions for the magnetic-energy-decay laws: In particular, while we expect the canonical t(-2/3) power law for helical turbulence when reconnection is fast (i.e., plasmoid-dominated or stochastic), we find a shallower t(-4/7) decay in the slow Sweet-Parker reconnection regime, in better agreement with existing numerical simulations. For nonhelical fields, for which there currently exists no definitive theory, we predict power laws of t(-10/9) and t(-20/17) in the fast- and slow-reconnection regimes, respectively. We formulate a general principle of decay of turbulent systems subject to conservation of Saffman-like invariants and propose how it may be applied to MHD turbulence with a strong mean magnetic field and to isotropic MHD turbulence with initial equipartition between the magnetic and kinetic energies.

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