Transonic Magnetic Slim Accretion Disks and kilo-Hertz Quasi-Periodic Oscillations in Low-Mass X-Ray Binaries
arXiv:astro-ph/9711142 · doi:10.1086/305938
Abstract
The inner regions of accretion disks of weakly magnetized neutron stars are affected by general relativity and stellar magnetic fields. Even for field strengths sufficiently small so that there is no well-defined magnetosphere surrounding the neutron star, there is still a region in the disk where magnetic field stress plays an important dynamical role. We construct magnetic slim disk models appropriate for neutron stars in low-mass X-ray binaries (LMXBs) which incorporate both effects (GR and magnetic fields). The B-field--disk interaction is treated in a phenomenological manner, allowing for both closed and open field configurations. We show that even for surface magnetic fields as weak as G, the sonic point of the accretion flow can be significantly modified from the pure GR value (near ). We derive an approximate analytical expression for the sonic radius and show that it mainly depends on the surface field strength and mass accretion rate through the ratio . The sonic radius thus obtained approaches the usual Alfven radius for high , and asymptotes to as . We therefore suggest that for neutron stars in LMXBs, the distinction between the disk sonic radius and the magnetospheric radius may not exist. We apply our theoretical results to the kHz QPOs observed in the X-ray fluxes of LMXBs. If these QPOs are associated with the orbital frequency at the inner radius of the disk, then the QPO frequencies and their correlation with mass accretion rate can provide useful constraints on the nature of the magnetic field -- disk interactions as well as on the structure of magnetic fields in LMXBs. Current observational data may suggest that the magnetic fields in LMXBs have complex topology.
AASTeX, 21 pages including 4 ps figures. Typos corrected and references added. ApJ in press (1998)
References in corpus (6)
- Lense-Thirring Precession and QPOs in Low Mass X-Ray Binaries
- The Ocean and Crust of a Rapidly Accreting Neutron Star: Implications for Magnetic Field Evolution and Thermonuclear Flashes
- Neutron Star Masses and Radii as Inferred from kilo-Hertz QPOs
- Strong-field general relativity and quasi-periodic oscillations in x-ray binaries
- Energy Spectra and High Frequency Oscillations in 4U 0614+091
- Constraints on Neutron Star Masses and Radii from Kilohertz QPOs
Cited by in corpus (21)
- Millisecond Oscillations in X-Ray Binaries
- The Disk-Magnetosphere Interaction in the Accretion-Powered Millisecond Pulsar SAX J1808.4-3658
- Magnetically Driven Warping, Precession and Resonances in Accretion Disks
- On the nature of the compact star in 4U 1728-34
- Magnetically Torqued Neutrino-Dominated Accretion Flows for Gamma-ray Bursts
- Simultaneous Measurements of X-Ray Luminosity and Kilohertz Quasi-Periodic Oscillations in Low-Mass X-Ray Binaries
- The MHD Alfven wave oscillation model of kHz Quasi Periodic Oscillations of Accreting X-ray Binaries
- Warping and precession in galactic and extragalactic accretion disks
- Theory of Disk Accretion onto Magnetic Stars
- Hyperaccreting Disks around Magnetars for Gamma-Ray Bursts: Effects of Strong Magnetic Fields
- Warping and Precession of Accretion Disks Around Magnetic Stars: Nonlinear Evolution
- Magnetically Driven Precession of Warped Disks and Milli-Hertz Variabilities in Accreting X-Ray Pulsars
- Disk Accretion onto Magnetized Neutron Stars: The Inner Disk Radius and Fastness Parameter
- Pulse amplitude depends on kHz QPO frequency in the accreting millisecond pulsar SAX J1808.4-3658
- Wave Excitation in Disks Around Rotating Magnetic Stars
- Influence of the Magnetic Coupling Process on the Advection Dominated Accretion Flows around Black Holes
- Self-similar structure of the magnetized radiation-dominated accretion disks
- On the Disappearance of Kilohertz Quasi-Periodic Oscillations at a High Mass Accretion Rate in Low-Mass X-ray Binaries
- Self-similar structure of magnetized ADAFs and CDAFs
- Constraints on kHz QPO models and stellar EOSs from SAX J1808.4-3658, Cyg X-2 and 4U 1820-30
- The Structure of a Quasi-Keplerian Accretion Disk around Magnetized Stars