Revealing the accelerating wind in the inner region of the colliding-wind binary WR 112
arXiv:2512.06066 · doi:10.3847/1538-3881/adfa03
Abstract
Colliding winds in massive binaries generate X-ray-bright shocks, synchrotron radio emission, and sometimes even dusty "pinwheel" spirals. We report the first X-ray detections of the dusty WC+O binary system WR 112 from Chandra and Swift, alongside 27 years of VLA/ATCA radio monitoring and new diffraction-limited Keck images. Because we view the nearly circular orbit almost edge-on, the colliding-wind zone alternates between heavy Wolf-Rayet wind self-absorption and a near-transparent O-star wind foreground each 20-yr orbit, producing phase-locked radio and X-ray variability. This scenario leads to a prediction that the radio spectral index is flatter from a larger non-thermal contribution around the radio intensity maximum, which is indeed observed. Existing models that assume a single dust-expansion speed fail to reproduce the combined infrared geometry and radio light curve. Instead, we require an accelerating post-shock flow that climbs from near-stationary to ~1350 km/s in about one orbital cycle, naturally matching the infrared spiral from about 5" down to within 0.1", while also fitting the phase of the radio brightening. These kinematic constraints supply critical boundary conditions for future hydrodynamic simulations, which can link hot-plasma cooling, non-thermal radio emission, X-ray spectra, and dust formation in a self-consistent framework. WR 112 thus joins WR 140, WR 104, and WR 70-16 (Apep) as a benchmark system for testing colliding-wind physics under an increasingly diverse range of orbital architectures and physical conditions.
28 pages; 12 figures; 6 tables; Accepted Astronomical Journal (AJ)
References in corpus (15)
- The Astropy Project: Sustaining and Growing a Community-oriented Open-source Project and the Latest Major Release (v5.0) of the Core Package
- CASA, the Common Astronomy Software Applications for Radio Astronomy
- A Quick Look at the GHz Radio Sky I. Source Statistics from the Very Large Array Sky Survey
- The prototype colliding-wind pinwheel WR 104
- The W. M. Keck Observatory infrared vortex coronagraph and a first image of HIP79124 B
- Monte-Carlo Imaging for Optical Interferometry
- Nested Dust Shells around the Wolf-Rayet Binary WR 140 observed with JWST
- Non-thermal X-rays from Colliding Wind Shock Acceleration in the Massive Binary Eta Carinae
- On-sky performance of the QACITS pointing control technique with the Keck/NIRC2 vortex coronagraph
- The Keck Aperture Masking Experiment: Near-Infrared Sizes of Dusty Wolf-Rayet Stars
- Optimizing the subwavelength grating of L-band Annular Groove Phase Masks for high coronagraphic performance
- Radiation-driven acceleration in the expanding WR140 dust shell
- Competitive X-ray and Optical Cooling in the Collisionless Shocks of WR 140
- Radio modelling of the brightest and most luminous non-thermal colliding-wind binary Apep
- Radio emission variability and proper motions of WR 112