The Thermal Structure of the Circumstellar Disk Surrounding the Classical Be Star gamma Cassiopeia
arXiv:0706.4036 · doi:10.1086/521209
Abstract
We have computed radiative equilibrium models for the gas in the circumstellar envelope surrounding the hot, classical Be star Cassiopeia. This calculation is performed using a code that incorporates a number of improvements over previous treatments of the disk's thermal structure by \citet{mil98} and \citet{jon04}; most importantly, heating and cooling rates are computed with atomic models for H, He, CNO, Mg, Si, Ca, & Fe and their relevant ions. Thus, for the first time, the thermal structure of a Be disk is computed for a gas with a solar chemical composition as opposed to assuming a pure hydrogen envelope. We compare the predicted average disk temperature, the total energy loss in H, and the near-IR excess with observations and find that all can be accounted for by a disk that is in vertical hydrostatic equilibrium with a density in the equatorial plane of to . We also discuss the changes in the disk's thermal structure that result from the additional heating and cooling processes available to a gas with a solar chemical composition over those available to a pure hydrogen plasma.
11 pages, 8 figures high resolution figures available at http://inverse.astro.uwo.ca/sig_jon07.html
References in corpus (2)
Cited by in corpus (6)
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- A Parameter Study of Classical Be Star Disk Models Constrained by Optical Interferometry
- The outskirts of Cygnus OB2
- Infrared Excess in the Be Star Delta Scorpii