Showing posts with label kepler-47. Show all posts
Showing posts with label kepler-47. Show all posts

Tuesday, February 21, 2017

The Fate of Tatooine-like Circumbinary Exoplanets


Authors:

Kostov et al

Abstract:

Inspired by the recent Kepler discoveries of circumbinary planets orbiting nine close binary stars, we explore the fate of the former as the latter evolve off the main sequence. We combine binary star evolution models with dynamical simulations to study the orbital evolution of these planets as their hosts undergo common-envelope (CE) stages, losing in the process a tremendous amount of mass on dynamical timescales. Five of the systems experience at least one Roche-lobe overflow and CE stage (Kepler-1647 experiences three), and the binary stars either shrink to very short orbits or coalesce; two systems trigger a double-degenerate supernova explosion. Kepler's circumbinary planets predominantly remain gravitationally bound at the end of the CE phase, migrate to larger orbits, and may gain significant eccentricity; their orbital expansion can be more than an order of magnitude and can occur over the course of a single planetary orbit. The orbits these planets can reach are qualitatively consistent with those of the currently known post-CE, eclipse-time variations circumbinary candidates. Our results also show that circumbinary planets can experience both modes of orbital expansion (adiabatic and nonadiabatic) if their host binaries undergo more than one CE stage; multiplanet circumbinary systems like Kepler-47 can experience both modes during the same CE stage. Additionally, unlike Mercury orbiting the Sun, a circumbinary planet with the same semimajor axis can survive the CE evolution of a close binary star with a total mass of 1 ${M}_{\odot }$.

Tuesday, September 6, 2016

Exoplanets Around Binary Stars are Ejected, Don't Collide

Planet Scattering Around Binaries: Ejections, Not Collisions

Authors:

Smullen et al

Abstract:

Transiting circumbinary planets discovered by Kepler provide unique insight into binary star and planet formation. Several features of this new found population, for example the apparent pile-up of planets near the innermost stable orbit, may distinguish between formation theories. In this work, we determine how planet-planet scattering shapes planetary systems around binaries as compared to single stars. In particular, we look for signatures that arise due to differences in dynamical evolution in binary systems. We carry out a parameter study of N-body scattering simulations for four distinct planet populations around both binary and single stars. While binarity has little influence on the final system multiplicity or orbital distribution, the presence of a binary dramatically effects the means by which planets are lost from the system. Most circumbinary planets are lost due to ejections rather than planet-planet or planet-star collisions. The most massive planet in the system tends to control the evolution. Systems similar to the only observed multi-planet circumbinary system, Kepler-47, can arise from much more tightly packed, unstable systems. Only extreme initial conditions introduce differences in the final planet populations. Thus, we suggest that any intrinsic differences in the populations are imprinted by formation.

Tuesday, January 6, 2015

Radiation and Plasma Environment of the Kepler Circumbinary Habitable Zone Planets

Constraining the Radiation and Plasma Environment of the Kepler Circumbinary Habitable Zone Planets

Authors:

Zuluaga et al

Abstract:

The remarkable discovery of many planets and candidates using the Kepler telescope even includes ten planets orbiting eight binaries. Three out of the eight, Kepler 16, Kepler 47, and KIC 9632895, have at least one planet in the circumbinary habitable zone (BHZ). In previous work (Mason et al. 2013), we investigated the potential habitability of Earth-like circumbinary planets. In particular, we highlighted the role of mutual stellar tidal interaction and the resulting impact on terrestrial planet habitability. The Kepler binaries with planets in the BHZ are studied in order to constrain the high energy radiation and plasma environment of potentially habitable circumbinary planets. The limits of the BHZ in these binaries as a function of time are estimated and the habitability lifetime is calculated. A self-consistent model of the evolution of stellar rotation including the effect of tidal interaction is key to establishing the plasma and radiation environment. A comprehensive model of the evolution of stellar activity and radiation properties, as proxies for stellar aggression towards planetary atmospheres is developed. We find that Kepler-16 has had a plasma environment favorable for the survival of atmospheres of Mars-sized planets and exomoons. Tides have modified the rotation of the stars in Kepler-47 making its radiation environment less harsh than solar system and a good example of the mechanism first proposed by Mason et al. (2013). KIC-9632895 has a plasma and radiation environment similar to that of solar system with slightly better than Earth radiation conditions at the inner edge of the BHZ.

Thursday, September 18, 2014

Predicting the Existence of Circumbinary Planet Kepler-47d

Predicting a third planet in the Kepler-47 circumbinary system

Authors:

Hinse et al

Abstract:

We have explored the possibility of a third circumbinary planet having a dynamically stable orbit in the Kepler-47 system and producing the single, unexplained transit event (not associated with either the binary star or the two known circumbinary planets) reported in the discovery paper (Orosz et al. 2012). We applied the dynamical mapping MEGNO technique to identify regions in the phase space of the system where this third planet can maintain stable, quasi-periodic orbits. The long-term, Lagrangian stability of the entire 5-body configuration (eclipsing binary + three planets) is confirmed by direct numerical integrations for 10 Myr. We identified several long-term stable regions between the two confirmed planets, and also an extended region beyond the orbit of the outer planet Kepler-47c. To further constrain the orbit of the hypothetical third planet, we compared the synthetic single transit duration it produces from the ensemble of stable orbits to the measured duration of the unexplained transit event (~4.15 hours). Due to the rich dynamics of the system, different stable orbits of such a hypothetical, third circumbinary planet can produce similar single-transit durations. To remove this degeneracy, we fixed the planet's orbit as circular and use the observed duration of the unexplained transit to analytically place an upper limit of 424 days for the planetary period. Our analysis strongly suggests that, if the yet unexplained single transit event is indeed due to a planetary object, then the most probable orbit for this undetected planet will be between Kepler-47b and Kepler-47c -- a region characterized by low-order mean motion resonances. We present our methodology in details, and discuss the implication of our results.

Friday, February 7, 2014

Simulations of Kepler-34(AB)b's System

Forming Circumbinary Planets: N-body Simulations of Kepler-34

Authors:

Lines et al

Abstract:

Observations of circumbinary planets orbiting very close to the central stars have shown that planet formation may occur in a very hostile environment, where the gravitational pull from the binary should be very strong on the primordial protoplanetary disk. Elevated impact velocities and orbit crossings from eccentricity oscillations are the primary contributors towards high energy, potentially destructive collisions that inhibit the growth of aspiring planets. In this work, we conduct high resolution, inter-particle gravity enabled N-body simulations to investigate the feasibility of planetesimal growth in the Kepler-34 system. We improve upon previous work by including planetesimal disk self-gravity and an extensive collision model to accurately handle inter-planetesimal interactions. We find that super-catastrophic erosion events are the dominant mechanism up to and including the orbital radius of Kepler-34(AB)b, making in-situ growth unlikely. It is more plausible that Kepler-34(AB)b migrated from a region beyond 1.5 AU. Based on the conclusions that we have made for Kepler-34 it seems likely that all of the currently known circumbinary planets have also migrated significantly from their formation location with the possible exception of Kepler-47(AB)c.