Entropy entrainment and dissipation in superfluid Helium
arXiv:0811.1660 · doi:10.1142/S0218271811019396
Abstract
Building on a general variational framework for multi-fluid dynamics, we discuss finite temperature effects in superfluids. The main aim is to provide insight into the modelling of more complex finite temperature superfluid systems, like the mixed neutron superfluid/proton superconductor that is expected in the outer core of a neutron star. Our final results can also (to a certain extent) be used to describe colour-flavour locked quark superconductors that may be present at the extreme densities in the deep neutron star core. As a demonstration of the validity of the model, which is based on treating the excitations in the system as a massless ``entropy'' fluid, we show that it is formally equivalent to the traditional two-fluid approach for superfluid Helium. In particular, we highlight the fact that the entropy entrainment encodes the ``normal fluid density'' of the traditional approach. We also show how the superfluid constraint of irrotationality reduces the number of dissipation coefficients in the system. This analysis provides insight into the more general problem when vortices are present in the superfluid, and we discuss how the so-called mutual friction force can be accounted for in our framework. The end product is a hydrodynamic formalism for finite temperature effects in a single superfluid condensate. This framework can readily be extended to more complex situations.
revised version, clarifies points regarding entrainment in different contexts
References in corpus (16)
- Color superconductivity in dense quark matter
- Cooling neutron star in the Cassiopeia~A supernova remnant: Evidence for superfluidity in the core
- Magnetohydrodynamics of superfluid and superconducting neutron star cores
- r-modes and mutual friction in rapidly rotating superfluid neutron stars
- R-modes of accreting hyperon stars as persistent sources of gravitational waves
- A hydrodynamical trigger mechanism for pulsar glitches
- Bulk viscosity of superfluid neutron stars
- Superfluid hyperon bulk viscosity and the r-mode instability of rotating neutron stars
- Variational multi-fluid dynamics and causal heat conductivity
- On the oscillations of dissipative superfluid neutron stars
- Bulk viscosity in kaon-condensed color-flavor locked quark matter
- On the stability of precessing superfluid neutron stars
- Do superfluid instabilities prevent neutron star precession?
- Oscillations of Rapidly Rotating Superfluid Stars
- Waves and instabilities in dissipative rotating superfluid neutron stars
- r-modes in low temperature colour-flavour-locked superconducting quark star
Cited by in corpus (13)
- Relativistic fluid dynamics: physics for many different scales
- Variational multi-fluid dynamics and causal heat conductivity
- The dynamics of dissipative multi-fluid neutron star cores
- From a complex scalar field to the two-fluid picture of superfluidity
- A superfluid perspective on neutron star dynamics
- A covariant action principle for dissipative fluid dynamics: From formalism to fundamental physics
- Insights into the physics of neutron star interiors from pulsar glitches
- Resistive relativistic magnetohydrodynamics from a charged multi-fluids perspective
- Quantised vortices and mutual friction in relativistic superfluids
- A minimal model for finite temperature superfluid dynamics
- Heat conduction in general relativity
- Steady heat conduction in general relativity
- Extending Israel and Stewart hydrodynamics to relativistic superfluids via Carter's multifluid approach