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相关论文: Making systems of Super Earths by inward migration…

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The population of hot Jupiters with adjacent planetary companions is small but growing, and inner companions appear to be a nearly ubiquitous outcome within this subset of the exoplanet census. While most hot Jupiters are believed to form…

地球与行星天体物理 · 物理学 2025-10-16 Devansh Mathur , Juliette Becker

Some systems of close-in "super-Earths" contain five or more planets on non-resonant but compact and nearly coplanar orbits. The Kepler-11 system is an iconic representative of this class of system. It is challenging to explain their…

地球与行星天体物理 · 物理学 2020-07-29 Leandro Esteves , André Izidoro , Sean N. Raymond , Bertram Bitsch

The large number of exoplanets found to orbit their host stars in very close orbits have significantly advanced our understanding of the planetary formation process. It is now widely accepted that such short-period planets cannot have…

地球与行星天体物理 · 物理学 2011-12-07 Jianghui Ji , Sheng Jin , C. G. Tinney

For the origin of the radially concentrated solar system's terrestrial planets, planet formation from a ring of solids at about 1 au from the Sun with convergent/suppressed type I migration is preferred. On the other hand, many super-Earths…

地球与行星天体物理 · 物理学 2024-07-23 Masahiro Ogihara , Alessandro Morbidelli , Masanobu Kunitomo

We present radiation hydrodynamic simulations in which binary planets form by close encounters in a system of several super-Earth embryos. The embryos are embedded in a protoplanetary disk consisting of gas and pebbles and evolve in a…

地球与行星天体物理 · 物理学 2018-12-12 Ondřej Chrenko , Miroslav Brož , David Nesvorný

The formation of super-Earths is strongly linked to the structure of the protoplanetary disc, which determines growth and migration. In the pebble accretion scenario, planets grow to the pebble isolation mass, at which the planet carves a…

地球与行星天体物理 · 物理学 2019-10-02 Bertram Bitsch

Approximately half of the planets discovered by NASA's Kepler mission are in systems where just a single planet transits its host star, and the remaining planets are observed to be in multi-planet systems. Recent analyses have reported a…

地球与行星天体物理 · 物理学 2020-10-07 Sanson T. S. Poon , Richard P. Nelson

At least 30\% of main sequence stars host planets with sizes of between 1 and 4 Earth radii and orbital periods of less than 100 days. We use N-body simulations including a model for gas-assisted pebble accretion and disk--planet tidal…

This paper explores the intermediate-time dynamics of newly formed solar systems with a focus on possible mechanisms for planetary migration. We consider two limiting corners of the available parameter space -- crowded systems containing…

天体物理学 · 物理学 2009-11-07 Fred C. Adams , Greg Laughlin

The observation of massive exoplanets at large separation from their host star, like in the HR 8799 system, challenges theories of planet formation. A possible formation mechanism involves the fragmentation of massive self-gravitating discs…

地球与行星天体物理 · 物理学 2015-05-28 Clément Baruteau , Farzana Meru , Sijme-Jan Paardekooper

We develop a simple model for computing planetary formation based on the core instability model for the gas accretion and the oligarchic growth regime for the accretion of the solid core. In this model several planets can form…

天体物理学 · 物理学 2009-11-13 Yamila Miguel , Adrian Brunini

NASA's Kepler mission discovered $\sim700$ planets in multi-planet systems containing 3 or more transiting bodies, many of which are super-Earths and mini-Neptunes in compact configurations. Using $N$-body simulations, we examine the in…

地球与行星天体物理 · 物理学 2020-01-08 Sanson T. S. Poon , Richard P. Nelson , Seth A. Jacobson , Alessandro Morbidelli

Planet-disk interaction predicts a change in the orbital elements of an embedded planet. Through linear and fully hydrodynamical studies it has been found that migration is typically directed inwards. Hence, this migration process gives…

地球与行星天体物理 · 物理学 2015-05-27 Willy Kley

Context: Planetary embryos can continue to grow by pebble accretion until they become giant planet cores. Simultaneously, these embryos mutually interact and also migrate due to torques arising from the protoplanetary disk. Aims: Our aim is…

地球与行星天体物理 · 物理学 2017-10-25 Ondřej Chrenko , Miroslav Brož , Michiel Lambrechts

Prevailing $N$-body planet formation models typically start with lunar-mass embryos and show a general trend of rapid migration of massive planetary cores to the inner Solar System in the absence of a migration trap. This setup cannot…

地球与行星天体物理 · 物理学 2024-03-27 Tommy Chi Ho Lau , Man Hoi Lee , Ramon Brasser , Soko Matsumura

We examine the formation of planets around binary stars in light of the recently discovered systems Kepler 16, 34 and 35. We conduct hydrodynamical simulations of self gravitating disks around binary systems. The selected binary and disk…

地球与行星天体物理 · 物理学 2015-06-11 F. I. Pelupessy , S. Portegies Zwart

Context.The Kepler mission has provided a large sample to statistically analyze the orbital properties of the super-Earth planets. We hypothesize that these planets formed early and consider the problem of matching planet formation theory…

地球与行星天体物理 · 物理学 2017-10-11 Beibei Liu , Chris W. Ormel

A well-known bottleneck for the core-accretion model of giant-planet formation is the loss of the cores into the star by Type-I migration, due to the tidal interactions with the gas disk. It has been shown that a steep surface-density…

天体物理学 · 物理学 2009-11-13 Alessandro Morbidelli , Aurelien Crida , Frederic Masset , Richard P. Nelson

We consider trends resulting from two formation mechanisms for short-period super-Earths: planet-planet scattering and migration. We model scenarios where these planets originate near the snow line in ``cold finger'' circumstellar disks.…

天体物理学 · 物理学 2009-11-13 Grant M. Kennedy , Scott J. Kenyon

It is likely that multiple bodies with masses between those of Mars and Earth ("planetary embryos") formed in the outer planetesimal disk of the solar system. Some of these were likely scattered by the giant planets into orbits with…

地球与行星天体物理 · 物理学 2018-01-31 Kedron Silsbee , Scott Tremaine