On the formation and evolution of asteroid belts and their potential significance for life
arXiv:1211.0023 · doi:10.1093/mnrasl/sls003
Abstract
Suggestions have been made that asteroid belts may be important both for the existence of life and perhaps even for the evolution of complex life on a planet. Using numerical models for protoplanetary discs we calculate the location of the snow line, and we propose that asteroid belts are most likely to form in its vicinity. We then show that observations of warm dust in exo-solar systems, thought to be produced by collisions between asteroids in a belt, indicate that asteroid belts (when they exist), indeed coincide with the radial location and the temperature of the snow line. Giant planets form outside the snow line and prevent planet formation just inside of their orbit creating an asteroid belt there. However, the migration of giant planets through the asteroid belt likely disperses the compact formation. We examine existing observations of giant exo-planets and find that less than 4% are at radial locations outside of the snow line. This definitely may be the consequence of observational selection effects. However, with this caveat in mind, we point out that the dearth of giant planets outside the snow line may also suggest that compact asteroid belts are not common, and more speculatively that complex life may not expected in most of the currently observed systems.
Accepted for publication in MNRAS
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- What Sets the Radial Locations of Warm Debris Disks?
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- Properties of the single Jovian planet population and the pursuit of Solar system analogues
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- Stable habitable zones of single Jovian planet systems
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- On the orbital evolution of a pair of giant planets in mean motion resonance
- How much water was delivered from the asteroid belt to the Earth after its formation?
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- On the Habitability of Our Universe