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The influence of general-relativity effects, dynamical tides and collisions on planet-planet scattering close to the star

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arxiv 1904.01420 v1 pith:PI4XYACY submitted 2019-04-02 astro-ph.EP

The influence of general-relativity effects, dynamical tides and collisions on planet-planet scattering close to the star

classification astro-ph.EP
keywords planetsorbitsstarclosegiantscatteringclose--incollisions
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Planet--Planet scattering is an efficient and robust dynamical mechanism for producing eccentric exoplanets. Coupled to tidal interactions with the central star, it can also explain close--in giant planets on circularized and potentially misaligned orbits. We explore scattering events occurring close to the star and test if they can reproduce the main features of the observed orbital distribution of giant exoplanets on tight orbits.In our modeling we exploit a numerical integration code based on the Hermite algorithm and including the effects of general relativity, dynamical tides and two--body collisions.We find that P--P scattering events occurring in systems with three giant planets initially moving on circular orbits close to their star produce a population of planets similar to the presently observed one, including eccentric and misaligned close--in planets. The contribution of tides and general relativity is relevant in determining the final outcome of the chaotic phase. Even if two--body collisions dominate the chaotic evolution of three planets in crossing orbits close to their star, the final distribution shows a significant number of planets on eccentric orbits. The highly misaligned close--in giant planets are instead produced by systems where the initial semi--major axis of the inner planet was around 0.2 au or beyond.

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  1. On the Eccentricity Distribution and Tidal Evolution of Transiting Brown Dwarfs

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    Short-period (P<16 d) transiting brown dwarfs are low-eccentricity while longer-period ones are more excited; assuming a shared primordial Beta distribution, tidal evolution constrains Q_BD ≈ 10^{7.1–8.1}.