Planet formation in stellar binaries II: overcoming the fragmentation barrier in alpha Centauri and gamma Cephei-like systems
arXiv:1408.4819 · doi:10.1088/0004-637X/798/2/70
Abstract
Planet formation in small-separation (~20 AU) eccentric binaries such as gamma Cephei or alpha Centauri is believed to be adversely affected by the presence of the stellar companion. Strong dynamical excitation of planetesimals by the eccentric companion can result in collisional destruction (rather than growth) of 1-100 km objects, giving rise to the "fragmentation barrier" for planet formation. We revise this issue using a novel description of secular dynamics of planetesimals in binaries, which accounts for the gravity of the eccentric, coplanar protoplanetary disk, as well as gas drag. By studying planetesimal collision outcomes we show, in contrast to many previous studies, that planetesimal growth and subsequent formation of planets (including gas giants) in AU-scale orbits within ~20 AU separation binaries may be possible, provided that the protoplanetary disks are massive (>10^{-2}M_\odot) and only weakly eccentric (disk eccentricity <0.01). These requirements are compatible with both the existence of massive (several M_J) planets in gamma Cep-like systems and the results of recent simulations of gaseous disks in eccentric binaries. Terrestrial and Neptune-like planets can also form in lower-mass disks at small (sub-AU) radii. We find that fragmentation barrier is less of a problem in eccentric disks which are apsidally aligned with the binary orbit. Alignment gives rise to special locations, where (1) relative planetesimal velocities are low and (2) the timescale of their drag-induced radial drift is long. This causes planetesimal pileup at such locations in the disk and promotes their growth.
15 pages, 10 figures, submitted to ApJ
References in corpus (9)
- Relative velocities among accreting planetesimals in binary systems: the circumprimary case
- Planetesimal and gas dynamics in binaries
- Planet Formation in Binary Stars: The case of Gamma Cephei
- Planet formation in Alpha Centauri A revisited: not so accretion-friendly after all
- Planet formation in stellar binaries I: planetesimal dynamics in massive protoplanetary disks
- Planet formation in the habitable zone of alpha Centauri B
- Planetesimal Accretion in Binary Systems: The Effects of Gas Dissipation
- On the dynamics and collisional growth of planetesimals in misaligned binary systems
- On the Formation and Dynamical Evolution of Planets in Binaries
Cited by in corpus (25)
- Direct Imaging Discovery of a Jovian Exoplanet Within a Triple Star System
- Planet formation in stellar binaries I: planetesimal dynamics in massive protoplanetary disks
- Orbital Stability of Circumstellar Planets in Binary Systems
- Planets in Binaries: Formation and Dynamical Evolution
- Milankovitch Cycles of Terrestrial Planets in Binary Star Systems
- Precise radial velocities of giant stars IX. HD 59686 Ab: a massive circumstellar planet orbiting a giant star in a ~13.6 au eccentric binary system
- Planet formation in stellar binaries: Global simulations of planetesimal growth
- A Dearth of Close-In Stellar Companions to M-dwarf TESS Objects of Interest
- Constraining the orbit of the planet-hosting binary Boötis: Clues about planetary formation and migration
- Long-Term Stability of Planets in the Centauri System, II: Forced Eccentricities
- The POKEMON Speckle Survey of Nearby M Dwarfs. I. New Discoveries
- The case of HD 106906 debris disc: A binary's revenge
- Terrestrial planet formation in a circumbinary disc around a coplanar binary
- WASP-20 is a close visual binary with a transiting hot Jupiter
- Disks in close binary stars: γ-Cephei revisited
- The Gliese 86 Binary System: A Warm Jupiter Formed in a Disk Truncated at 2 AU
- Misalignment of terrestrial circumbinary planets as an indicator of their formation mechanism
- Evolution of Centauri B's protoplanetary disc
- Effects of Proxima Centauri on Planet Formation in Alpha Centauri
- Formation of inner planets in the presence of a Cold Jupiter: orbital evolution and relative velocities of planetesimals
- Resonance capture and long-term evolution of planets in binary star systems
- Kozai-Lidov oscillations triggered by a tilt instability of detached circumplanetary discs
- The PAIRS project: a global formation model for planets in binaries. I. Effect of disc truncation on the growth of S-type planets
- The PAIRS project: a global formation model for planets in binaries. II. Gravitational perturbation effects from secondary stars
- Planetary migration in precessing disks for S-type wide binaries