Planetary Engulfment in the Hertzsprung--Russell Diagram
arXiv:1801.04274 · doi:10.3847/2041-8213/aaa5fa
Abstract
Planets accompany most sun-like stars. The orbits of many are sufficiently close that they will be engulfed when their host stars ascend the giant branch. This Letter compares the power generated by orbital decay of an engulfed planet to the intrinsic stellar luminosity. Orbital decay power is generated by drag on the engulfed companion by the surrounding envelope. As stars ascend the giant branch their envelope density drops and so does the power injected through orbital decay, scaling approximately as . Their luminosity, however, increases along the giant branch. These opposed scalings indicate a crossing, where . We consider the engulfment of planets along isochrones in the Hertzsprung-Russell (H-R) diagram. We find that the conditions for such a crossing occur around ~ (or ~au) for Jovian planetary companions. The consumption of closer-in giant planets, such as hot Jupiters, leads to , while more distant planets such as warm Jupiters, ~au, lead to minor perturbations of their host stars with . Our results map out the parameter space along the giant branch in the H-R Diagram where interaction with planetary companions leads to significant energetic disturbance of host stars.
7 pages, 4 figures, accepted for publication in ApJL
References in corpus (10)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Stellar Mergers Are Common
- Observable Signatures of Planet Accretion in Red Giant Stars I: Rapid Rotation and Light Element Replenishment
- Tidal Dissipation and Obliquity Evolution in Hot Jupiter Systems
- Violent Stellar Merger Model for Transient Events
- The Role of Planet Accretion in Creating the Next Generation of Red Giant Rapid Rotators
- Star-planet interactions: II. Is planet engulfment the origin of fast rotating red giants?
- Stars Get Dizzy After Lunch
- On Lithium-Rich Red Giants. II. Engulfment on the Giant Branch of Trumpler 20
- Star-planet interactions. IV. Possibility of detecting the orbit-shrinking of a planet around a red giant
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- Light Curve Models of Convective Common Envelopes
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