Angular momentum distributions for observed and modeled exoplanetary systems
arXiv:2108.02890 · doi:10.3847/1538-4357/ac3242
Abstract
The distribution of angular momentum of planets and their host stars provides important information on the formation and evolution of the planetary system. However, mysteries still remain, partly due to bias and uncertainty of the current observational datasets and partly due to the fact that theoretical models for the formation and evolution of planetary systems are still underdeveloped. In this study, we calculate the spin angular momenta of host stars and the orbital angular momenta of their planets using data from the NASA Exoplanet Archive, together with detailed analysis of observation dependent biases and uncertainty ranges. We also analyze the angular momenta of the planetary system as a function of star age to understand their variation in different evolutionary stages. In addition, we use a population of planets from theoretical model simulations to reexamine the observed patterns and compare the simulated population with the observed samples to assess variations and differences. We found the majority of exoplanets discovered thus far do not have the angular momentum distribution similar to the planets in our Solar System, though this could be due to the observation bias. When filtered by the observational biases, the model simulated angular momentum distributions are comparable to the observed pattern in general. However, the differences between the observation and model simulation in the parameter (angular momentum) space provide more rigorous constraints and insights on the issues that needed future improvement.
References in corpus (15)
- New evolutionary models for pre-main sequence and main sequence low-mass stars down to the hydrogen-burning limit
- DHP Framework: Digital Health Passports Using Blockchain -- Use case on international tourism during the COVID-19 pandemic
- Planetary population synthesis coupled with atmospheric escape: a statistical view of evaporation
- The Mass-Dependence of Angular Momentum Evolution in Sun-Like Stars
- Improved angular momentum evolution model for solar-like stars II. Exploring the mass dependence
- Indications for an influence of Hot Jupiters on the rotation and activity of their host stars
- Microlensing Results Challenge the Core Accretion Runaway Growth Scenario for Gas Giants
- CSI 2264: Investigating rotation and its connection with disk accretion in the young open cluster NGC 2264
- The Ophiuchus DIsk Survey Employing ALMA (ODISEA): Disk Dust Mass Distributions across Protostellar Evolutionary Classes
- Weakened magnetic braking supported by asteroseismic rotation rates of Kepler dwarfs
- The Impact of Metallicity on the Evolution of Rotation and Magnetic Activity of Sun-Like Stars
- Rotation rate of the solar core as a key constraint to magnetic angular momentum transport in stellar interiors
- Steady State by Recycling prevents Premature Collapse of Protoplanetary Atmospheres
- How do T Tauri stars accrete
- On the survival of resonant and non-resonant planetary systems in star clusters