Vega's hot dust from icy planetesimals scattered inward by an outward-migrating planetary system
arXiv:1403.6821 · doi:10.1093/mnrasl/slu048
Abstract
Vega has been shown to host multiple dust populations, including both hot exo-zodiacal dust at sub-AU radii and a cold debris disk extending beyond 100 AU. We use dynamical simulations to show how Vega's hot dust can be created by long-range gravitational scattering of planetesimals from its cold outer regions. Planetesimals are scattered progressively inward by a system of 5-7 planets from 30-60 AU to very close-in. In successful simulations the outermost planets are typically Neptune-mass. The back-reaction of planetesimal scattering causes these planets to migrate outward and continually interact with fresh planetesimals, replenishing the source of scattered bodies. The most favorable cases for producing Vega's exo-zodi have negative radial mass gradients, with sub-Saturn- to Jupiter-mass inner planets at 5-10 AU and outer planets of 2.5 to 20 Earth masses. The mechanism fails if a Jupiter-sized planet exists beyond ~15 AU because the planet preferentially ejects planetesimals before they can reach the inner system. Direct-imaging planet searches can therefore directly test this mechanism.
Updated references. Accepted to MNRAS Letters. 5 pages, 4 figures. Blog post about the paper at http://planetplanet.net/2014/03/31/vega-a-planetary-poem/
References in corpus (5)
- Circumstellar material in the Vega inner system revealed by CHARA/FLUOR
- The History of the Solar System's Debris Disc: Observable Properties of the Kuiper Belt
- Planetesimal driven migration as an explanation for observations of high levels of warm, exozodiacal dust
- Deep L' and M-band Imaging for Planets Around Vega and epsilon Eridani
- Coronagraphic Search for Extra-Solar Planets around epsilon Eri and Vega
Cited by in corpus (13)
- A near-infrared interferometric survey of debris-disc stars. IV. An unbiased sample of 92 southern stars observed in H-band with VLTI/PIONIER
- Inner mean-motion resonances with eccentric planets: A possible origin for exozodiacal dust clouds
- The Fate of Scattered Planets
- Dust Populations in the Iconic Vega Planetary System Resolved by ALMA
- Gas trapping of hot dust around main-sequence stars
- Fomalhaut b could be massive and sculpting the narrow, eccentric debris disc, if in mean-motion resonance with it
- Hot exozodiacal dust: an exocometary origin?
- Water delivery to the TRAPPIST-1 planets
- A decade of radial-velocity monitoring of Vega and new limits on the presence of planets
- Hot exozodis: cometary supply without trapping is unlikely to be the mechanism
- Highly structured inner planetary system debris around the intermediate age Sun-like star TYC 8830 410 1
- How much large dust could be present in hot exozodiacal dust systems?
- Deep Search for a scattered light dust halo around Vega with the Hubble Space Telescope