Experimental and theoretical evidence of universality in superfluid vortex reconnections
Abstract
The minimum separation between reconnecting vortices in fluids and superfluids obeys a universal scaling law with respect to time. The prereconnection and the postreconnection prefactors of this scaling law are different, a property related to irreversibility and to energy transfer and dissipation mechanisms. In the present work, we determine the temperature dependence of these prefactors in superfluid helium from experiments and a numeric model which fully accounts for the coupled dynamics of the superfluid vortex lines and the thermal normal fluid component. At all temperatures, we observe a pre- and postreconnection asymmetry similar to that observed in other superfluids and in classical viscous fluids, indicating that vortex reconnections display a universal behavior independent of the small-scale regularizing dynamics. We also numerically show that each vortex reconnection event represents a sudden injection of energy in the normal fluid. Finally we argue that in a turbulent flow, these punctuated energy injections can sustain the normal fluid in a perturbed state, provided that the density of superfluid vortices is large enough.
Article Details
Journal Info
Proceedings of the National Academy of Sciences
National Academy of Sciences
Authors (8)
Piotr Z. Stasiak
School of Mathematics, Statistics and Physics
Yiming Xing
National High Magnetic Field Laboratory
Yousef Alihosseini
National High Magnetic Field Laboratory
Carlo F. Barenghi
School of Mathematics, Statistics and Physics
Andrew Baggaley
School of Mathematics, Statistics and Physics
Wei Guo
Luca Galantucci
School of Mathematics, Statistics and Physics
Giorgio Krstulovic
Université Côte d’Azur, Observatoire de la Côte d’Azur, CNRS, Laboratoire Lagrangre