4.7 Article

Multiplanet destabilization and escape in post-main-sequence systems

Journal

MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
Volume 430, Issue 4, Pages 3383-3396

Publisher

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stt137

Keywords

planets and satellites: dynamical evolution and stability; planet-star interactions; stars: AGB and post-AGB; stars: mass-loss; stars: planetary systems

Funding

  1. A.U.TH Research Committee (Greece): 'Action C: Support of Basic Research' [87840]
  2. STFC [ST/J001538/1] Funding Source: UKRI
  3. Science and Technology Facilities Council [ST/J001538/1, ST/H00243X/1] Funding Source: researchfish

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Discoveries of exoplanets orbiting evolved stars motivate critical examinations of the dynamics of N-body systems with mass-loss. Multiplanet evolved systems are particularly complex because of the mutual interactions between the planets. Here, we study the underlying dynamical mechanisms which can incite planetary escape in two-planet post-main-sequence systems. Stellar mass-loss alone is unlikely to be rapid and high enough to eject planets at typically observed separations. However, the combination of mass-loss and planet-planet interactions can prompt a shift from stable to chaotic regions of phase space. Consequently, when mass-loss ceases, the unstable configuration may cause escape. By assuming a constant stellar mass-loss rate, we utilize maps of dynamical stability to illustrate the distribution of regular and chaotic trajectories in phase space. We show that chaos can drive the planets to undergo close encounters, leading to the ejection of one planet. Stellar mass-loss can trigger the transition of a planetary system from a stable to chaotic configuration, subsequently causing escape. We find that mass-loss non-adiabatically affects planet-planet interaction for the most massive progenitor stars which avoid the supernova stage. For these cases, we present specific examples of planetary escape.

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