On developed superfluid turbulence
arXiv:cond-mat/0402035 · doi:10.1023/B:JOLT.0000041269.56070.2d
Abstract
Superfluid turbulence is governed by two dimensionless parameters. One of them is the intrinsic parameter q which characterizes the relative value of the friction force acting on a vortex with respect to the non-dissipative forces. The inverse parameter 1/q plays the same role as the Reynolds number Re=UR/νin classical hydrodynamics. It marks the transition between the "laminar" and turbulent regimes of vortex dynamics. The developed turbulence, described by a Kolmogorov cascade, occurs when Re >> 1 in classical hydrodynamics. In superfluids, the developed turbulence occurs at q << 1. Another parameter of superfluid turbulence is the superfluid Reynolds number Re_s=UR/κ, which contains the circulation quantum κcharacterizing quantized vorticity in superfluids. The two parameters q and Re_s control the crossover or transition between two classes of superfluid turbulence: (i) the classical regime, where the Kolmogorov cascade (probably modified by the non-canonical dissipation due to mutual friction) is effective, vortices are locally polarized, and the quantization of vorticity is not important; and (ii) the Vinen quantum turbulence where the properties are determined by the quantization of vorticity. The phase diagram of these dynamical vortex states is suggested.
JLTP style, 19 pages, 1 figure, prepared for Proceedings of conference Quantum Phenomena At Low Temperatures, Lammi, Finland, January 2004, modified after referee reports
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- Theoretical analysis of quantum turbulence using the Onsager "ideal turbulence" theory
- Local and nonlocal dynamics in superfluid turbulence
- Kelvin waves in nonequilibrium universal dynamics of relativistic scalar field theories
- Thermal Detection of Turbulent and Laminar Dissipation in Vortex Front Motion
- Anomalous non-thermal fixed point in a quasi-two-dimensional dipolar Bose gas
- Decaying superfluid turbulence near an anomalous non-thermal fixed point
- Vortex Retention Mediated Turbulent Transitions in Self-Gravitating Bosonic and Axionic Condensates