Density asymmetry and wind velocities in the orbital plane of the symbiotic binary EG Andromedae
arXiv:2307.04423 · doi:10.1051/0004-6361/202346338
Abstract
Context. Non-dusty late-type giants without a corona and large-scale pulsations represent objects that do not fulfil the conditions under which standard mass-loss mechanisms can be applied efficiently. The driving mechanism of their winds is still unknown. Aims. The main goal of this work is to match the radial velocities of absorbing matter with a depth in the red giant (RG) atmosphere in the S-type symbiotic star EG And. Methods. We measured fluxes and radial velocities of ten FeI absorption lines from spectroscopic observations with a resolution of ~30 000. At selected orbital phases, we modelled their broadened profiles, including all significant broadening mechanisms. Results. The selected FeI absorption lines at 5151 - 6469A, originate at a radial distance ~1.03 RG radii from its centre. The corresponding radial velocity is typically ~1 km/s , which represents a few percent of the terminal velocity of the RG wind. The high scatter of the radial velocities of several km/s in the narrow layer of the stellar atmosphere points to the complex nature of the near-surface wind mass flow. The average rotational velocity of 11 km/s implies that the rotation of the donor star can contribute to observed focusing the wind towards the orbital plane. The orbital variability of the absorbed flux indicates the highest column densities of the wind in the area between the binary components, even though the absorbing neutral material is geometrically more extended from the opposite side of the giant. This wind density asymmetry in the orbital plane region can be ascribed to gravitational focusing by the white dwarf companion. Conclusions. Our results suggest that both gravitational and rotational focusing contribute to the observed enhancement of the RG wind towards the orbital plane, which makes mass transfer by the stellar wind highly efficient.
12 pages, 10 figures
References in corpus (21)
- A grid of MARCS model atmospheres for late-type stars I. Methods and general properties
- The Sixth Data Release of the Radial Velocity Experiment (RAVE) -- II: Stellar Atmospheric Parameters, Chemical Abundances and Distances
- Probing the mass-loss history of AGB and red supergiant stars from CO rotational line profiles I. Theoretical model -- Mass-loss history unravelled in VY CMa
- The IACOB project: III. New observational clues to understand macroturbulent broadening in massive O- and B-type stars
- A census of symbiotic stars in the 2MASS, WISE and Gaia surveys
- ALMA data suggest the presence of a spiral structure in the inner wind of CW Leo
- Numerical Simulations of Wind Accretion in Symbiotic Binaries
- Wind morphology around cool evolved stars in binaries: the case of slowly accelerating oxygen-rich outflows
- Rotational velocities of the giants in symbiotic stars: II. Are S-type symbiotics synchronized?
- Line Broadening in Field Metal-poor Red Giant and Red Horizontal Branch Stars
- Rotational velocities of the giants in symbiotic stars: III. Evidence of fast rotation in S-type symbiotics
- Tracers of the ionization fraction in dense and translucent gas: I. Automated exploitation of massive astrochemical model grids
- Wind mass transfer in S-type symbiotic binaries I. Focusing by the wind compression model
- Hubble Space Telescope Constraints on the Winds and Astrospheres of Red Giant Stars
- Chemical abundance analysis of 13 southern symbiotic giants from high-resolution spectra at ~1.56 μm
- Formation of the Asymmetric Accretion Disk from Stellar Wind Accretion in an S-type Symbiotic Star
- Wind mass transfer in S-type symbiotic binaries III. Confirmation of a wind focusing in EG Andromedae from the nebular [OIII]λ5007 line
- Absorption Lines in the 0.91-1.33 m Spectra of Red Giants for Measuring Abundances of Mg, Si, Ca, Ti, Cr, and Ni
- Chemical abundance analysis of symbiotic giants. I. RW Hya and SY Mus
- Chemical abundance analysis of symbiotic giants - II. AE Ara, BX Mon, KX TrA, and CL Sco
- The emergence of a neutral wind region in the orbital plane of symbiotic binaries during their outbursts