Formation of Terrestrial Planets in Disks with Different Surface Density Profiles
arXiv:1512.02852 · doi:10.1007/s10569-015-9663-y
Abstract
We present the results of an extensive study of the final stage of terrestrial planet formation in disks with different surface density profiles and for different orbits of Jupiter and Saturn. We carried out simulations for disk densities proportional to r^-0.5, r^-1, and r^-1.5, and also for partially depleted disks as in the recent model of Mars formation by Izidoro et al (2014). The purpose of our study is to determine how the final assembly of planets and their physical properties are affected by the total mass of the disk and its radial profile. Because of the important roles of secular resonances in orbits and properties of the final planets, we studied the effects of these resonances as well. We have divided this study into two parts. In Part 1, we are interested in examining the effects of secular resonances on the formation of Mars and orbital stability of terrestrial planets. In Part 2, our goal is to determine trends that may exist between the disk surface density profile and the final properties of terrestrial planets. In the context of the depleted disk model, results show that the nu_5 resonance does not have a significant effect on the final orbits of terrestrial planets. However, nu_6 and nu_16 resonances play important roles in clearing their affected areas ensuring that no additional mass will be scattered into the accretion zone of Mars so that it can maintain its mass and orbital stability. In Part 2, our results indicate that despite some small correlations, in general, no trend seems to exist between the disk surface density profile and the mean number of the final planets, their masses, time of formation, and distances to the central star. We present the results of our simulations and discuss their implications for the formation of Mars and other terrestrial planets, as well as the physical properties of these objects such as their masses and water contents.
36 pages, 14 figures. Part 1 presents a complete study of the effects of secular resonances in the classical and depleted-disk models for different disk surface density profiles. Part 2 (page 25) presents a detailed analysis of the orbital and physical properties of the final planets for different disk surface densities. Accepted for publication in Celestial Mechanics and Dynamical Astronomy
References in corpus (4)
- The Feeding Zones of Terrestrial Planets and Insights into Moon Formation
- The Fragility of the Terrestrial Planets During a Giant Planet Instability
- Formation and accretion history of terrestrial planets from runaway growth through to late time: implications for orbital eccentricity
- The Effect of Planets Beyond the Ice Line on the Accretion of Volatiles by Habitable-Zone Rocky Planets
Cited by in corpus (23)
- White Dwarf Pollution by Asteroids from Secular Resonances
- Realistic On-the-fly Outcomes of Planetary Collisions II: Bringing Machine Learning to N-body Simulations
- Setting the Stage: Planet formation and Volatile Delivery
- Terrestrial planet formation: Dynamical shake-up and the low mass of Mars
- Rocky Planet Formation: Quick and Neat
- Constraining the Formation of the Four Terrestrial Planets in the Solar System
- Terrestrial Planet Formation: Constraining the Formation of Mercury
- Formation of Terrestrial Planets
- Triggering Sublimation-Driven Activity of Main Belt Comets
- Asteroid impacts on terrestrial planets: The effects of super-Earths and the role of the resonance
- Terrestrial planet formation in a circumbinary disc around a coplanar binary
- Building Terrestrial Planets: Why results of perfect-merging simulations are not quantitatively reliable approximations to accurate modeling of terrestrial planet formation
- Residual Neural Networks for the Prediction of Planetary Collision Outcomes
- Protoplanet Collisions: Statistical Properties of Ejecta
- Can narrow disks in the inner solar system explain the four terrestrial planets?
- Formation of the warped debris disc around Pictoris
- Relative Habitability of Exoplanet Systems with Two Giant Planets
- Asteroids and life: How special is the solar system?
- Detailed Calculations of the Efficiency of Planetesimal Accretion in the Core-Accretion Model -II: The effect of Saturn
- Formation of the four terrestrial planets in the Jupiter-Saturn chaotic excitation scenario: fundamental properties and water delivery
- Secular Resonances in Planet-Hosting Binary Stars. I. General Theory
- Secular Resonances in Planet-Hosting Binary Stars. II. Application to Terrestrial Planet Formation
- Runaway Growth of Planetesimals Revisited: Presenting Criteria Required for Realistic Modeling of Planetesimal Growth