English

Transition to Superfluid Turbulence

Soft Condensed Matter 2009-11-11 v1 Superconductivity

Abstract

Turbulence in superfluids depends crucially on the dissipative damping in vortex motion. This is observed in the B phase of superfluid 3He where the dynamics of quantized vortices changes radically in character as a function of temperature. An abrupt transition to turbulence is the most peculiar consequence. As distinct from viscous hydrodynamics, this transition to turbulence is not governed by the velocity-dependent Reynolds number, but by a velocity-independent dimensionless parameter 1/q which depends only on the temperature-dependent mutual friction -- the dissipation which sets in when vortices move with respect to the normal excitations of the liquid. At large friction and small values of 1/q < 1 the dynamics is vortex number conserving, while at low friction and large 1/q > 1 vortices are easily destabilized and proliferate in number. A new measuring technique was employed to identify this hydrodynamic transition: the injection of a tight bundle of many small vortex loops in applied vortex-free flow at relatively high velocities. These vortices are ejected from a vortex sheet covering the AB interface when a two-phase sample of 3He-A and 3He-B is set in rotation and the interface becomes unstable at a critical rotation velocity, triggered by the superfluid Kelvin-Helmholtz instability.

Keywords

Cite

@article{arxiv.cond-mat/0608537,
  title  = {Transition to Superfluid Turbulence},
  author = {V. B. Eltsov and M. Krusius and G. E. Volovik},
  journal= {arXiv preprint arXiv:cond-mat/0608537},
  year   = {2009}
}

Comments

Short review; to be published in Journal of Low Temperature Physics (2006)

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