English

Nonhelical mean-field dynamos in a sheared turbulence

Astrophysics 2009-11-13 v1

Abstract

Mechanisms of nonhelical large-scale dynamos (shear-current dynamo and effect of homogeneous kinetic helicity fluctuations with zero mean) in a homogeneous turbulence with large-scale shear are discussed. We have found that the shear-current dynamo can act even in random flows with small Reynolds numbers. However, in this case mean-field dynamo requires small magnetic Prandtl numbers (i.e., Pm<Pmcr<1{\rm Pm} < {\rm Pm}^{\rm cr}<1). The threshold in the magnetic Prandtl number, Pmcr=0.24{\rm Pm}^{\rm cr} = 0.24, is determined using second order correlation approximation (or first-order smoothing approximation) for a background random flow with a scale-dependent viscous correlation time τc=(νk2)1\tau_c=(\nu k^2)^{-1} (where ν\nu is the kinematic viscosity of the fluid and kk is the wave number). For turbulent flows with large Reynolds numbers shear-current dynamo occurs for arbitrary magnetic Prandtl numbers. This dynamo effect represents a very generic mechanism for generating large-scale magnetic fields in a broad class of astrophysical turbulent systems with large-scale shear. On the other hand, mean-field dynamo due to homogeneous kinetic helicity fluctuations alone in a sheared turbulence is not realistic for a broad class of astrophysical systems because it requires a very specific random forcing of kinetic helicity fluctuations that contains, e.g., low-frequency oscillations.

Keywords

Cite

@article{arxiv.0807.0320,
  title  = {Nonhelical mean-field dynamos in a sheared turbulence},
  author = {I. Rogachevskii and N. Kleeorin},
  journal= {arXiv preprint arXiv:0807.0320},
  year   = {2009}
}

Comments

5 pages, Astronomische Nachrichten, in press

R2 v1 2026-06-21T10:56:43.290Z