Publication | Open Access
Kelvin-wave cascade in the vortex filament model
29
Citations
27
References
2014
Year
EngineeringFluid MechanicsRarefied FlowSmall-scale Energy-transfer MechanismUnsteady FlowKelvin-wave CascadeNonlinear Wave PropagationMagnetohydrodynamicsTransport PhenomenaVortex DynamicThermodynamicsPhysicsMultiphase FlowBose-einstein CondensationZero-temperature Superfluid TurbulenceVortex DynamicsTurbulent Flow Heat TransferApplied PhysicsVortex Induced VibrationKelvin Waves
The small-scale energy-transfer mechanism in zero-temperature superfluid turbulence of helium-4 is still a widely debated topic. Currently, the main hypothesis is that weakly nonlinear interacting Kelvin waves (KWs) transfer energy to sufficiently small scales such that energy is dissipated as heat via phonon excitations. Theoretically, there are at least two proposed theories for Kelvin-wave interactions. We perform the most comprehensive numerical simulation of weakly nonlinear interacting KWs to date and show, using a specially designed numerical algorithm incorporating the full Biot-Savart equation, that our results are consistent with the nonlocal six-wave KW interactions as proposed by L'vov and Nazarenko.
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