Hydrodynamical simulations of wind interaction in spider systems : A step toward understanding transitional millisecond pulsars
arXiv:2407.14842 · doi:10.1051/0004-6361/202450638
Abstract
The detected population of "spiders" has significantly grown in the past decade thanks to multiwavelength follow-up investigations of unidentified Fermi sources. These systems consist of low-mass stellar companions orbiting rotation-powered millisecond pulsars in short periods of a few hours up to day. Among them, a subset of intriguing objects called transitional millisecond pulsars (tMSPs) has been shown to exhibit a remarkable behavior, transitioning between pulsar-binary and faint low-mass X-ray binary states over a span of a few years. Our objective is to study the interaction of stellar winds in tMSPs in order to understand their observational properties. To this end we focus on the parameter range that places the system near Roche-lobe overflow. Employing the adaptative mesh refinement (AMR) AMRVAC 2.0 code, we performed 2D hydrodynamical (HD) simulations of the interaction between the flows from both stars, accounting for the effects of gravity and orbital motion. By studying the mass loss and launch speed of the winds, we successfully recreated two phenomenologically distinct regimes: the accretion stream and the radio pulsar state. We also identified the tipping point that marks the sharp transition between these two states. In the pulsar state, we reconstructed the corresponding X-ray light curves of the system that produces the characteristic double-peak pattern of these systems. The position of the peaks is shifted due to orbital motion and the leading peak is weaker due to eclipsing by the companion. We suggest that a smaller leading peak in X-rays is indicative of a nearly edge-on system. This study highlights the importance of gravity and orbital motion in the interaction between the companion and pulsar winds. Our setup allows the study of the complex interaction between the pulsar wind and an accretion stream during mass transfer.
A&A accepted
References in corpus (23)
- A Radio Pulsar/X-ray Binary Link
- Discovery of PSR J1227-4853: A transition from a low-mass X-ray binary to a redback millisecond pulsar
- Accretion vs colliding wind models for the gamma-ray binary LS I +61 303: an assessment
- PSR J1810+1744: Companion Darkening and a Precise High Neutron Star Mass
- Optical spectroscopy and demographics of redback millisecond pulsar binaries
- X-ray states of redback millisecond pulsars
- A 3D dynamical model of the colliding winds in binary systems
- Timing Observations of PSR J1023+0038 During a Low-Mass X-ray Binary State
- NuSTAR Observations of the State Transition of Millisecond Pulsar Binary PSR J1023+0038
- B-ducted Heating of Black Widow Companions
- Orbital evolution of colliding star and pulsar winds in 2D and 3D; effects of: dimensionality, EoS, resolution, and grid size
- The Synchrotron Emission Pattern of IntraBinary Shocks
- Neutron star mass estimates from gamma-ray eclipses in spider millisecond pulsar binaries
- The Quasi-Roche lobe overflow state in the evolution of Close Binary Systems containing a radio pulsar
- SHOCKFIND - An algorithm to identify magnetohydrodynamic shock waves in turbulent clouds
- Face changing companion of the redback millisecond pulsar PSR J1048+2339
- Simulations of an inhomogeneous stellar wind interacting with a pulsar wind in a binary system
- XMM-Newton Observes the Intrabinary Shock of PSR J1959+2048
- Rectangular core-collapse supernova remnants: application to Puppis A
- Colliding Winds in Low-Mass Binary Star Systems: wind interactions and implications for habitable planets
- A spider timing model: accounting for quadrupole deformations and relativity in close pulsar binaries
- Mass-stream trajectories with non-synchronously rotating donors
- X-ray variability of transitional millisecond pulsars: a faint, stable and fluctuating disk