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Resolving the dusty circumstellar environment of the A[e] supergiant HD 62623 with the VLTI/MIDI

2009/12/10 by A. Meilland, S. Kanaan, M. Borges Fernandes +6 · 1 citation
Physics and Astronomy · #Astronomy #Astrophysical Phenomena and Observations #Astrophysics #Astrophysics and Star Formation Studies #Circumstellar dust #Circumstellar envelope #Optics #Physics #RADIUS #Radiative transfer #Stars #Stellar, planetary, and galactic studies #Supergiant #astro-ph.SR

paper · pdf · doi:10.1051/0004-6361/200913640

13 pages, 11 figures. A&A accepted paper

arxiv created 2009/12/10 · openalex publication_date 2010/01/21 · arxiv updated 2015/05/14 · openalex created_date 2017/05/26 · openalex updated_date 2026/08/05

Abstract

<i>Context. <i/>B[e] stars are hot stars surrounded by circumstellar gas and dust which is responsible for the presence of emission lines and IR-excess in their spectra. How dust can be formed in this highly illuminated and diluted environment remains an open issue.<i>Aims. <i/>HD 62623 is one of the very few A-type supergiants showing the B[e] phenomenon. We studied the geometry of its circumstellar envelope in the mid-infrared using long-baseline interferometry, which is the only observing technique able to spatially resolve objects smaller than a few tens of milliarcseconds.<i>Methods. <i/>We obtained nine calibrated visibility measurements between October 2006 and January 2008 using the VLTI/MIDI instrument in SCI-PHOT mode and PRISM spectral dispersion mode with projected baselines ranging from 13 to 71 m and with various position angles (PA). We used geometrical models and physical modeling with a radiative transfer code to analyze these data.<i>Results. <i/>The dusty circumstellar environment of HD 62623 is partially resolved by the VLTI/MIDI, even with the shortest baselines. The environment is flattened (<i>a/b<i/>~1.3<i>±<i/>0.1) and can be separated into two components: a compact one whose extension grows from 17 mas at 8 <i>μ<i/>m to 30 mas at 9.6 <i>μ<i/>m and stays almost constant up to 13 <i>μ<i/>m, and a more extended one that is over-resolved even with the shortest baselines. Using the radiative transfer code MC3D, we managed to model HD 62623's circumstellar environment as a dusty disk with an inner radius of 3.85<i>±<i/>0.6 AU, an inclination angle of 60<i>±<i/>10°, and a mass of 2 × 10<sup>-7<sup/> .<i>Conclusions. <i/>It is the first time that the dusty disk inner rim of a supergiant star exhibiting the B[e] phenomenon is significantly constrained. The inner gaseous envelope likely contributes up to 20% to the total N band flux and acts like a reprocessing disk. Finally, the hypothesis of a stellar wind deceleration by the companion's gravitational effects remains the most probable case since the bi-stability mechanism does not seem to be efficient for this star.

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