Supercritical colliding wind binaries
arXiv:2301.08635 · doi:10.1051/0004-6361/202245285
Abstract
Context. Particle-accelerating colliding-wind binaries (PACWBs) are systems that are formed by two massive and hot stars and produce nonthermal (NT) radiation. The key elements of these systems are fast winds and the shocks that they create when they collide. Binaries with nonaccreting young pulsars have also been detected as NT emitters, again as a consequence of the wind-wind interaction. Black holes (BHs) might produce NT radiation by this mechanism if they accrete at super-Eddington rates. In such cases, the disk is expected to launch a radiation-driven wind, and if this wind has an equatorial component, it can collide with the companion star yielding a PACWB. These systems are supercritical colliding wind binaries (SCWBs). Aims. We aim to characterize the particle acceleration and NT radiation produced by the collision of winds in binary systems composed of a superaccreting BH and an early-type star. Methods. We estimated the terminal velocity of the disk-driven wind by calculating the spatial distribution of the radiation fields and their effect on disk particles. We then found the location of the wind collision region and calculated the timescales of energy gain and losses of relativistic particles undergoing diffusive acceleration. With this information, we were able to compute the associated spectral energy distribution of the radiation. Results. We find that the interaction of winds can produce NT emission from radio up to tens of GeV, with luminosities in the range of , which for the most part are contributed by electron synchrotron and inverse Compton radiation. Conclusions. We conclude that SCWBs, such as some ultraluminous X-ray sources and some Galactic X-ray binaries, are capable of accelerating cosmic rays and producing NT electromagnetic emission from radio to -rays, in addition to the thermal components.
13 pages, 10 figures. Accepted for publication in Astronomy and Astrophysics
References in corpus (16)
- The Nature of SS433 and the Ultraluminous X-ray Sources
- Masses, Beaming and Eddington Ratios in Ultraluminous X-ray Sources
- Discovery of High-Energy Gamma-Ray Emission from the Binary System PSR B1259-63/LS 2883 Around Periastron with Fermi
- Detection of Gamma-ray Emission from the Eta-Carinae Region
- Non-thermal emission processes in massive binaries
- The proton low-mass microquasar: high-energy emission
- Ultraluminous X-Ray Sources
- ULX spectra revisited: Accreting, highly magnetized neutron stars as the engines of ultraluminous X-ray sources
- Modeling the RXTE light curve of Carinae from a 3-D SPH simulation of its binary wind collision
- Searching for Outflows in Ultraluminous X-ray Sources Through High-Resolution X-ray Spectroscopy
- Hard X-ray emission from Eta Carinae
- Simulating three-dimensional nonthermal high-energy photon emission in colliding-wind binaries
- Gamma-ray heartbeat powered by the microquasar SS 433
- PeV photon and neutrino flares from galactic gamma-ray binaries
- A radio-map of the colliding winds in the very massive binary system HD 93129A
- Super-Eddington accretion onto a stellar mass ultraluminous X-ray source NGC 4190 ULX1