The orbital evolution of asteroids, pebbles and planets from giant branch stellar radiation and winds
arXiv:1505.01851
Abstract
The discovery of over 50 planets around evolved stars and more than 35 debris discs orbiting white dwarfs highlight the increasing need to understand small body evolution around both early and asymptotic giant branch (GB) stars. Pebbles and asteroids are susceptible to strong accelerations from the intense luminosity and winds of GB stars. Here, we establish equations that can model time-varying GB stellar radiation, wind drag and mass loss. We derive the complete three-dimensional equations of motion in orbital elements due to (1) the Epstein and Stokes regimes of stellar wind drag, (2) Poynting-Robertson drag, and (3) the Yarkovsky drift with seasonal and diurnal components. We prove through averaging that the potential secular eccentricity and inclination excitation due to Yarkovsky drift can exceed that from Poynting-Robertson drag and radiation pressure by at least three orders of magnitude, possibly flinging asteroids which survive YORP spin-up into a widely dispersed cloud around the resulting white dwarf. The GB Yarkovsky effect alone may change an asteroid's orbital eccentricity by ten per cent in just one Myr. Damping perturbations from stellar wind drag can be just as extreme, but are strongly dependent on the highly uncertain local gas density and mean free path length. We conclude that GB radiative and wind effects must be considered when modelling the post-main-sequence evolution of bodies smaller than about 1000 km.
Corrected Fig. 3 and Eq. 14 (In Press, MNRAS)
References in corpus (27)
- The frequency of planetary debris around young white dwarfs
- A gaseous metal disk around a white dwarf
- The Chemical Composition of an Extrasolar Minor Planet
- Formation of planetary debris discs around white dwarfs I: Tidal disruption of an extremely eccentric asteroid
- Carbon Deficiency in Externally-Polluted White Dwarfs: Evidence for Accretion of Asteroids
- The frequency and infrared brightness of circumstellar discs at white dwarfs
- SDSSJ104341.53+085558.2: A second white dwarf with a gaseous debris disc
- Likely detection of water-rich asteroid debris in a metal-polluted white dwarf
- Detectable close-in planets around white dwarfs through late unpacking
- Signs of a faint disc population at polluted white dwarfs
- Variable Emission from a Gaseous Disc around a Metal-Polluted White Dwarf
- Hydrogen delivery onto white dwarfs from remnant exo-Oort cloud comets
- Exploring wind-driving dust species in cool luminous giants I. Basic criteria and dynamical models of M-type AGB stars
- Evaporation and Accretion of Extrasolar Comets Following White Dwarf Kicks
- Kepler-432 b: a massive planet in a highly eccentric orbit transiting a red giant
- The Penn State - Torun Centre for Astronomy Planet Search stars. II. Lithium abundance analysis of the Red Giant Clump sample
- Predictions for the correlation between giant and terrestrial extrasolar planets in dynamically evolved systems
- Radial velocity confirmation of Kepler-91 b. Additional evidence of its planetary nature using the Calar Alto/CAFE instrument
- Formation and evolution of the two 4/3 resonant giants planets in HD 200946
- A Long-period Eccentric Substellar Companion to the Evovled Intermediate-Mass Star HD 14067
- Tracking Advanced Planetary Systems with HARPS-N (TAPAS). I. A multiple planetary system around the red giant star TYC 1422-614-1
- Kepler-432 b: a massive warm Jupiter in a 52-day eccentric orbit transiting a giant star
- Spin Axes and Shape Models of Asteroid Pairs: Fingerprints of YORP and a Path to the Density of Rubble Piles
- Do weak magnetic fields prevent hydrogen from accreting onto metal-line white dwarf stars?
- A simple bound for the variation at closest approach of a small body and star due to general relativity
- Ejecta Transfer in the Pluto System
- Effect of lift force on the aerodynamics of dust grains in the protoplanetary disk