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March 3, 2026Publications of the Astronomical Society of Japan0 citations

Self-consistent N -body simulation of planetesimal-driven migration. II. The effect of PDM on planet formation from a planetesimal disk

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TJTenri JinnoTSTakayuki R. SaitohYFYoko Funato

Key Points

  • This research aims to investigate the effect of planetesimal-driven migration on planet formation within a planetesimal disk.
  • Conducted high-resolution N-body simulations of planetesimal-driven migration
  • Incorporated interactions among planetesimals, gas disks, and gravitational forces
  • Analyzed dynamic migrations of protoplanets during runaway growth stage
  • Protoplanets experience significant inward and outward migrations due to planetesimal-driven migration
  • Orbital repulsion creates two groups of protoplanets moving in opposite directions
  • Dynamic migration plays a crucial role in forming Earth-like planets and ice giant cores

Abstract

Abstract According to the canonical planet formation theory, planets form “in-situ” within a planetesimal disk via runaway and oligarchic growth. This theory, however, cannot naturally account for the formation timescale of ice giants or the existence of diverse exoplanetary systems. Planetary migration is a key to resolving these problems. One well-known mechanism of planetary migration is planetesimal-driven migration (PDM), which can let planets undergo significant migration through gravitational scattering of planetesimals. In our previous paper (Jinno et al. 2024, PASJ, 76, 1309), we investigated the migration of a single planet through PDM, addressing previously unexplored aspects of both the gravitational interactions among planetesimals and the interactions with disk gas. Here, we perform the first high-resolution simulations of planet formation from a large-scale planetesimal disk, incorporating planet–gas disk interactions, planet–planetesimal interactions, gravitational interactions among all planetesimals, and physical collisions between planetesimals to investigate the role of PDM in the planet formation process. Our results show that protoplanets undergo dynamic inward/outward migrations during the runaway growth stage via PDM. Moreover, orbital repulsion combined with PDM tends to make two groups of protoplanets, outer ones going outward and inner ones going inward. Such dynamic migration significantly influences the early stages of planetary formation. These findings provide a viable pathway for the formation of Earth-like planets and ice giants’ cores. Furthermore, they suggest that a standard protoplanetary disk model can account for the planetary migration necessary to explain diverse exoplanetary systems without the need for additional hypotheses.

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Cite This Study

Jinno et al. (2026) studied this question.

synapsesocial.com/papers/69a67ed1f353c071a6f0a514https://doi.org/10.1093/pasj/psag017
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