Reconstruction of spider system's observables from orbital period modulations via the Applegate mechanism
arXiv:2502.21283 · doi:10.1051/0004-6361/202453353
Abstract
Redback and black widow pulsars are two classes of peculiar binary systems characterized by very short orbital periods, very low mass companions, and, in several cases, regular eclipses in their pulsed radio signal. Long-term timing revealed systematic but unpredictable variations in the orbital period, which can most likely be explained by the so-called Applegate mechanism. This relies on the magnetic dynamo activity generated inside the companion star and triggered by the pulsar wind, which induces a modification of the star's oblateness (or quadrupole variation). This, in turn, couples with the orbit by gravity, causing a consequent change in the orbital period. The Applegate description limits to provide estimates of physical quantities by highlighting their orders of magnitude. Therefore, we derive the time-evolution differential equations underlying the Applegate model, that is, we track such physical quantities in terms of time. Our strategy is to employ the orbital period modulations, measured by fitting the observational data, and implementing a highly accurate approximation scheme to finally reconstruct the dynamics of the spider system under study and the relative observables. Among the latter is the magnetic field activity inside the companion star, which is still a matter of debate for its complex theoretical modeling and the ensuing expensive numerical simulations. As an application, we exploit our methodology to examine two spider sources: 47 Tuc W (redback) and 47 Tuc O (black widow). The results obtained are analyzed and then discussed with the literature.
13 pages; 7 figures; 1 table; accepted for publication on Astronomy & Astrophysics
References in corpus (17)
- Simulations of dynamo action in fully convective stars
- Magnetic field generation in fully convective rotating spheres
- Modeling interaction of relativistic and nonrelativistic winds in binary system PSR 1259-63/SS2883. I.Hydrodynamical limit
- Tidal dissipation in binary systems
- Optical spectroscopy and demographics of redback millisecond pulsar binaries
- Magnetic Inhibition of Convection and the Fundamental Properties of Low-Mass Stars. II. Fully Convective Main Sequence Stars
- Long-term observations of the pulsars in 47 Tucanae. I. A study of four elusive binary systems
- On the Radii of Brown Dwarfs Measured with AKARI Near-Infrared Spectroscopy
- 21-year timing of the black-widow pulsar J2051-0827
- Magnetic modeling of inflated low-mass stars using interior fields no larger than ~10 kilogauss
- Unusual Emission Variations Near the Eclipse of A Black Widow PSR J17200533
- Formation of redbacks via accretion induced collapse
- The Intrabinary Shock and Companion Star of Redback Pulsar J2215+5135
- A spider timing model: accounting for quadrupole deformations and relativity in close pulsar binaries
- First measurement of the total gravitational quadrupole moment of a black widow companion
- Convective dynamos of black widow companions
- Hydrodynamical simulations of wind interaction in spider systems : A step toward understanding transitional millisecond pulsars