Entrainment coefficient and effective mass for conduction neutrons in neutron star crust: II Macroscopic treatment
arXiv:astro-ph/0408083 · doi:10.1142/S0218271806008504
Abstract
Phenomena such as pulsar frequency glitches are believed to be attributable to differential rotation of a current of ``free'' superfluid neutrons at densities above the ``drip'' threshold in the ionic crust of a neutron star. Such relative flow is shown to be locally describable by adaption of a canonical two fluid treatment that emphasizes the role of the momentum covectors constructed by differentiation of action with respect to the currents, with allowance for stratification whereby the ionic number current may be conserved even when the ionic charge number Z is altered by beta processes. It is demonstrated that the gauge freedom to make different choices of the chemical basis determining which neutrons are counted as ``free'' does not affect their ``superfluid'' momentum covector, which must locally have the form of a gradient (though it does affect the ``normal'' momentum covector characterising the protons and those neutrons that are considered to be ``confined'' in the nuclei). It is shown how the effect of ``entrainment'' (whereby the momentum directions deviate from those of the currents) is controlled by the (gauge independent) mobility coefficient K, estimated in recent microscopical quantum mechanical investigations, which suggest that the corresponding (gauge dependent) ``effective mass'' m* of the free neutrons can become very large in some layers. The relation between this treatment of the crust layers and related work (using different definitions of ``effective mass'') intended for the deeper core layers is discussed.
21 pages Latex. Part II of article whose Part I (Simple microscopic models) is given by nucl-th/0402057. New version extended to include figures
References in corpus (15)
- Gravitational waves from instabilities in relativistic stars
- Band structure effects for dripped neutrons in neutron star crust
- Slowly rotating superfluid Newtonian neutron star model with entrainment
- Variational description of multi-fluid hydrodynamics: Uncharged fluids
- Entrainment coefficient and effective mass for conduction neutrons in neutron star crust: simple microscopic models
- A Relativistic Mean Field Model for Entrainment in General Relativistic Superfluid Neutron Stars
- Adiabatic oscillations of non-rotating superfluid neutron stars
- Effect of entrainment on stress and pulsar glitches in neutron star crust
- Covariant analysis of Newtonian multi-fluid models for neutron stars: I Milne-Cartan structure and variational formulation
- Covariant analysis of Newtonian multi-fluid models for neutron stars: II Stress - energy tensors and virial theorems
- Covariant analysis of Newtonian multi-fluid models for neutron stars: III Transvective, viscous, and superfluid drag dissipation
- Covariant Newtonian and Relativistic dynamics of (magneto)-elastic solid model for neutron star crust
- Lagrangian perturbation theory of nonrelativistic rotating superfluid stars
- Effect of BCS pairing on entrainment in neutron superfluid current in neutron star crust
- Newtonian mechanics of neutron superfluid in elastic star crust
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- Effect of entrainment on stress and pulsar glitches in neutron star crust
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