English

Scaling and energy transfer in rotating turbulence

Fluid Dynamics 2009-11-13 v2

Abstract

The inertial-range properties of quasi-stationary hydrodynamic turbulence under solid-body rotation are studied via high-resolution direct numerical simulations. For strong rotation the nonlinear energy cascade exhibits depletion and a pronounced anisotropy with the energy flux proceeding mainly perpendicularly to the rotation axis. This corresponds to a transition towards a quasi-two-dimensional flow similar to a linear Taylor-Proudman state. In contrast to the energy spectrum along the rotation axis which does not scale self-similarly, the perpendicular spectrum displays an inertial range with k2k^{-2}_\perp-behavior. A new phenomenology gives a rationale for the observations. The scaling exponents ζp\zeta_p of structure functions up to order p=8p=8 measured perpendicular to the rotation axis indicate reduced intermittency with increasing rotation rate. The proposed phenomenology is consistent with the inferred asymptotic non-intermittent behavior ζp=p/2\zeta_p=p/2.

Keywords

Cite

@article{arxiv.physics/0612207,
  title  = {Scaling and energy transfer in rotating turbulence},
  author = {Wolf-Christian Mueller and Mark Thiele},
  journal= {arXiv preprint arXiv:physics/0612207},
  year   = {2009}
}

Comments

to be published in Europhysics Letters (www.epletters.net), minor changes to match version in print

R2 v1 2026-07-22T19:14:30.007Z