English

Numerical study of dynamo action at low magnetic Prandtl numbers

Geophysics 2009-11-10 v1 Fluid Dynamics

Abstract

We present a three--pronged numerical approach to the dynamo problem at low magnetic Prandtl numbers PMP_M. The difficulty of resolving a large range of scales is circumvented by combining Direct Numerical Simulations, a Lagrangian-averaged model, and Large-Eddy Simulations (LES). The flow is generated by the Taylor-Green forcing; it combines a well defined structure at large scales and turbulent fluctuations at small scales. Our main findings are: (i) dynamos are observed from PM=1P_M=1 down to PM=102P_M=10^{-2}; (ii) the critical magnetic Reynolds number increases sharply with PM1P_M^{-1} as turbulence sets in and then saturates; (iii) in the linear growth phase, the most unstable magnetic modes move to small scales as PMP_M is decreased and a Kazantsev k3/2k^{3/2} spectrum develops; then the dynamo grows at large scales and modifies the turbulent velocity fluctuations.

Keywords

Cite

@article{arxiv.physics/0410046,
  title  = {Numerical study of dynamo action at low magnetic Prandtl numbers},
  author = {Y. Ponty and P. D. Mininni and D. C. Montgomery and J. -F. Pinton and H. Politano and A. Pouquet},
  journal= {arXiv preprint arXiv:physics/0410046},
  year   = {2009}
}

Comments

4 pages, 4 figures