Suppression of the inclination instability in the trans-Neptunian Solar system
arXiv:2307.00378 · doi:10.1093/mnras/stad1687
Abstract
The trans-Neptunian scattered disk exhibits unexpected dynamical structure, ranging from an extended dispersion of perihelion distance to a clustered distribution in orbital angles. Self-gravitational modulation of the scattered disk has been suggested in the literature as an alternative mechanism to Planet 9 for sculpting the orbital architecture of the trans-Neptunian region. The numerics of this hypothesis have hitherto been limited to super-particle simulations that omit direct gravitational perturbations from the giant planets and instead model them as an orbit-averaged (quadrupolar) potential, through an enhanced moment of the central body. For sufficiently massive disks, such simulations reveal the onset of collective dynamical behaviour $\unicode{x2014}$ termed the $\unicode{x2018}$inclination instability$\unicode{x2019}$ $\unicode{x2014}$ wherein orbital circularisation occurs at the expense of coherent excitation of the inclination. Here, we report GPU-accelerated simulations of a self-gravitating scattered disk (across a range of disk masses spanning 5 to 40 Earth masses) that self-consistently account for intra-particle interactions as well as Neptune's perturbations. Our numerical experiments show that even under the most favourable conditions, the inclination instability never ensues. Instead, due to scattering, the disk depletes. While our calculations show that a transient lopsided structure can emerge within the first few hundreds of Myr, the terminal outcomes of these calculations systematically reveal a scattered disk that is free of any orbital clustering. We conclude thus that the inclination instability mechanism is an inadequate explanation of the observed architecture of the solar system.
References in corpus (15)
- The Planet Nine Hypothesis
- The GENGA Code: Gravitational Encounters in N-body simulations with GPU Acceleration
- OSSOS VI. Striking Biases in the detection of large semimajor axis Trans-Neptunian Objects
- Extreme trans-Neptunian objects and the Kozai mechanism: signalling the presence of trans-Plutonian planets
- Generation of Highly Inclined Trans-Neptunian Objects by Planet Nine
- Dynamical Evolution Induced by Planet Nine
- Observational bias and the clustering of distant eccentric Kuiper belt objects
- Orbital clustering in the distant solar system
- OSSOS XV: Probing the Distant Solar System with Observed Scattering TNOs
- Injection of Inner Oort Cloud Objects Into the Distant Kuiper Belt by Planet Nine
- Outer Solar System Perihelion Gap Formation Through Interactions with a Hypothetical Distant Giant Planet
- Giant Planet Influence on the Collective Gravity of a Primordial Scattered Disk
- Apsidal Clustering following the Inclination Instability
- Dynamical evolution of a self-gravitating planetesimal disk in the distant trans-Neptunian region
- On the Dynamical Origins of Retrograde Jupiter Trojans and their Connection to High-Inclination TNOs