Intermittency enhancement in quantum turbulence
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by
Emil Varga and Jian Gao and Wei Guo and Ladislav Skrbek
2018
Abstract
Intermittency is a hallmark of turbulence, which exists not only in turbulent
flows of classical viscous fluids but also in flows of quantum fluids such as
superfluid ^4He. Despite the established similarity between turbulence in
classical fluids and quasi-classical turbulence in superfluid ^4He, it has
been predicted that intermittency in superfluid ^4He is temperature dependent
and enhanced for certain temperatures, which strikingly contrasts the nearly
flow-independent intermittency in classical turbulence. Experimental
verification of this theoretical prediction is challenging since it requires
well-controlled generation of quantum turbulence in ^4He and flow measurement
tools with high spatial and temporal resolution. Here, we report an
experimental study of quantum turbulence generated by towing a grid through a
stationary sample of superfluid ^4He. The decaying turbulent quantum flow is
probed by combining a recently developed He^*_2 molecular tracer-line tagging
velocimetry technique and a traditional second sound attenuation method. We
observe quasi-classical decays of turbulent kinetic energy in the normal fluid
and of vortex line density in the superfluid component. For several time
instants during the decay, we calculate the transverse velocity structure
functions. Their scaling exponents, deduced using the extended self-similarity
hypothesis, display non-monotonic temperature-dependent intermittency
enhancement, in excellent agreement with recent theoretical/numerical study of
Biferale et al. [Phys. Rev. Fluids 3, 024605 (2018)].
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