Circumbinary Planet Formation in the Kepler-16 System. II. A Toy Model for In-situ Planet Formation within a Debris Belt
arXiv:1309.4679 · doi:10.1088/0004-637X/790/1/41
Abstract
Recent simulations have shown that the formation of planets in circumbinary configurations (such as those recently discovered by Kepler) is dramatically hindered at the planetesimal accretion stage. The combined action of the binary and the protoplanetary disk acts to raise impact velocities between km-sized planetesimals beyond their destruction threshold, halting planet formation within at least 10 AU from the binary. It has been proposed that a primordial population of "large" planetesimals (100 km or more in size), as produced by turbulent concentration mechanisms, would be able to bypass this bottleneck; however, it is not clear whether these processes are viable in the highly perturbed circumbinary environments. We perform two-dimensional hydrodynamical and N-body simulations to show that km-sized planetesimals and collisional debris can drift and be trapped in a belt close to the central binary. Within this belt, planetesimals could initially grow by accreting debris, ultimately becoming "indestructible" seeds that can accrete other planetesimals in-situ despite the large impact speeds. We find that large, indestructible planetesimals can be formed close to the central binary within years, therefore showing that even a primordial population of "small" planetesimals can feasibly form a planet.
3rd version, addressing referee report, typos & references fixed. 15 pages, 10 figures. Accepted for publication in ApJ
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- Birth Locations of the Kepler Circumbinary Planets
- Spiral patterns in planetesimal circumbinary disks
- Caustic Structures and Detectability of Circumbinary Planets in Microlensing
- Milankovitch Cycles of Terrestrial Planets in Binary Star Systems
- Planet formation in stellar binaries: Global simulations of planetesimal growth
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- Effects of XUV radiation on circumbinary planets
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- Habitability properties of circumbinary planets
- Terrestrial planet formation in a circumbinary disc around a coplanar binary
- Sculpting the circumbinary planet size distribution through resonant interactions with companion planets
- Secular Evolution Driven by Massive Eccentric Disks/Rings: An Apsidally Aligned Case