As long as vorticity quantization remains irrelevant for long-wave physics, superfluid turbulence supports a regime macroscopically identical to the Kolmogorov cascade of a normal liquid. At high enough wave numbers, the energy flux in wavelength space is carried by individual Kelvin-wave cascades on separate vortex lines. We analyze the transformation of the Kolmogorov cascade into the Kelvin-wave cascade, revealing a chain of three distinct intermediate cascades supported by local-induction motion of the vortex lines and distinguished by specific reconnection mechanisms. The most prominent qualitative feature predicted is unavoidable production of vortex rings of a characteristic size
We argue that the physics of interacting Kelvin Waves (KWs) is highly nontrivial and cannot be under...
To explain the observed decay of superfluid turbulence at very low temperature, it has been proposed...
We study two different types of simplified models for Kelvin wave turbulence on quantized vortex lin...
As long as vorticity quantization remains irrelevant for long-wave physics, superfluid turbulence su...
Kelvin waves (kelvons), the distortion waves on vortex lines, play a key part in the relaxation of s...
We present a decay scenario of superfluid turbulence (ST)—structured or non-structured tangle of qua...
The main topological feature of a superfluid is a quantum vortex with an identifiable inner and oute...
A Kolmogorov-type cascade of Kelvin waves—the distortion waves on vortex lines—plays a key part in t...
On the basis of a recently proposed scenario of the transformation of the Kolmogorov cascade into th...
We study the statistical and dynamical behavior of turbulent Kelvin waves propagating on quantized v...
The small-scale energy-transfer mechanism in zero-temperature superfluid turbulence of helium-4 is s...
International audienceThe turbulence of a superfluid is investigated by direct numerical simulations...
We present evidence of Kelvin excitations in space-time resolved spectra of numerical simulations of...
We argue that the physics of interacting Kelvin Waves (KWs) is highly nontrivial and cannot be under...
To explain the observed decay of superfluid turbulence at very low temperature, it has been proposed...
We study two different types of simplified models for Kelvin wave turbulence on quantized vortex lin...
As long as vorticity quantization remains irrelevant for long-wave physics, superfluid turbulence su...
Kelvin waves (kelvons), the distortion waves on vortex lines, play a key part in the relaxation of s...
We present a decay scenario of superfluid turbulence (ST)—structured or non-structured tangle of qua...
The main topological feature of a superfluid is a quantum vortex with an identifiable inner and oute...
A Kolmogorov-type cascade of Kelvin waves—the distortion waves on vortex lines—plays a key part in t...
On the basis of a recently proposed scenario of the transformation of the Kolmogorov cascade into th...
We study the statistical and dynamical behavior of turbulent Kelvin waves propagating on quantized v...
The small-scale energy-transfer mechanism in zero-temperature superfluid turbulence of helium-4 is s...
International audienceThe turbulence of a superfluid is investigated by direct numerical simulations...
We present evidence of Kelvin excitations in space-time resolved spectra of numerical simulations of...
We argue that the physics of interacting Kelvin Waves (KWs) is highly nontrivial and cannot be under...
To explain the observed decay of superfluid turbulence at very low temperature, it has been proposed...
We study two different types of simplified models for Kelvin wave turbulence on quantized vortex lin...