Asteroid flux towards circumprimary habitable zones in binary star systems: I. Statistical Overview
arXiv:1506.00993 · doi:10.1051/0004-6361/201526430
Abstract
So far, multiple stellar systems harbor more than 130 extra solar planets. Dynamical simulations show that the outcome of planetary formation process can lead to various planetary architecture (i.e. location, size, mass and water content) when the star system is single or double. In the late phase of planetary formation, when embryo-sized objects dominate the inner region of the system, asteroids are also present and can provide additional material for objects inside the habitable zone (hereafter HZ). In this study, we make a comparison of several binary star systems and their efficiency to move icy asteroids from beyond the snow-line into orbits crossing the HZ. We modeled a belt of 10000 asteroids (remnants from the late phase of planetary formation process) beyond the snow-line. The planetesimals are placed randomly around the primary star and move under the gravitational influence of the two stars and a gas giant. As the planetesimals do not interact with each other, we divided the belt into 100 subrings which were separately integrated. In this statistical study, several double star configurations with a G-type star as primary are investigated. Our results show that small bodies also participate in bearing a non-negligible amount of water to the HZ. The proximity of a companion moving on an eccentric orbit increases the flux of asteroids to the HZ, which could result into a more efficient water transport on a short timescale, causing a heavy bombardment. In contrast to asteroids moving under the gravitational perturbations of one G-type star and a gas giant, we show that the presence of a companion star can not only favor a faster depletion of our disk of planetesimals but can also bring 4 -- 5 times more water into the whole HZ.
Accepted for publication in A&A
References in corpus (12)
- Habitable Zones Around Main-Sequence Stars: Dependence on Planetary Mass
- Solar System evolution from compositional mapping of the asteroid belt
- Increased insolation threshold for runaway greenhouse processes on Earth like planets
- On the Location of the Snow Line in a Protoplanetary Disk
- Relative velocities among accreting planetesimals in binary systems: the circumprimary case
- Terrestrial Planet Formation Surrounding Close Binary Stars
- The Exoplanet Orbital Eccentricity - Multiplicity Relation and the Solar System
- Habitable Planet Formation in Binary-Planetary Systems
- Collisions between equal sized ice grain agglomerates
- Habitable Zones with Stable Orbits for Planets around Binary Systems
- Numerical integration of dynamical systems with Lie series: Relativistic acceleration and non-gravitational forces
- Fragmentation of colliding planetesimals with water content
Cited by in corpus (6)
- Dynamics and habitability in circumstellar planetary systems of known binary stars
- The influence of orbital resonances on the water transport to objects in the circumprimary habitable zone of binary star systems
- Asteroid flux towards circumprimary habitable zones in binary star systems: II. Dynamics
- Dynamics of passing-stars-perturbed binary star systems
- Exocomets in the 47 UMa System: Theoretical Simulations including Water Transport
- Effects of Variable Mass, Disk-Like Structure, and Radiation Pressure on the Dynamics of Circular Restricted Three-Body Problem