Published November 1989 | Version v1
Journal article

Vortex creep and the internal temperature of neutron stars - Linear and nonlinear response to a glitch

  • 1. Univ. of Hong Kong (Hong Kong)
  • 2. Illinois Univ., Urbana (USA)
  • 3. Scientific and Technical Research Council of Turkey, Research Institute for Basic Sciences, Gebze (Turkey)

Description

The dynamics of pinned superfluid in neutron stars is determined by the thermal 'creep' of vortices. Vortex creep can respond to changes in the rotation rate of the neutron star crust and provide the observed types of dynamical relaxation following pulsar glitches. It also gives rise to energy dissipation, which determines the thermal evolution of pulsars once the initial heat content has been radiated away. The different possible regimes of vortex creep are explored, and it is shown that the nature of the dynamical response of the pinned superfluid evolves with a pulsar's age. Younger pulsars display a linear regime, where the response is linear in the initial perturbation and is a simple exponential relaxation as a function of time. A nonliner response, with a characteristic nonlinear dependence on the initial perturbation, is responsible for energy dissipation and becomes the predominant mode of response as the pulsar ages. The transition from the linear to the nonlinear regime depends sensitively on the temperature of the neutron star interior. A preliminary review of existing postglitch observations is given within this general evolutionary framework. 34 refs

Additional details

Publishing Information

Journal Title
Astrophysical Journal
Journal Volume
346
Series
Astrophys. J.
Journal Page Range
823-832
ISSN
0004-637X
CODEN
ASJOA

INIS

Country of Publication
United States
Country of Input or Organization
United States
INIS RN
21038259
Subject category
S79: ASTROPHYSICS, COSMOLOGY AND ASTRONOMY;
Descriptors DEI
ASTROPHYSICS; DYNAMICS; ENERGY LOSSES; EQUATIONS; NEUTRON STARS; NONLINEAR PROBLEMS; PULSARS; ROTATION; STAR EVOLUTION; STAR MODELS; SUPERNOVA REMNANTS; TEMPERATURE DEPENDENCE; VORTICES
Descriptors DEC
COSMIC RADIO SOURCES; MATHEMATICAL MODELS; MECHANICS; STARS