Mercury-Ares: a high-performance n-body code for planet formation studies
arXiv:2601.16791 · doi:10.1016/j.ascom.2026.101064
Abstract
Forming planetary systems are populated by large numbers of gravitationally interacting planetary bodies, spanning from massive giant planets to small planetesimals akin to present-day asteroids and comets. All these planetary bodies are embedded in the gaseous embrace of their native protoplanetary disks, and their interactions with the disk gas play a central role in shaping their dynamical evolution and the outcomes of planet formation. These factors make realistic planet formation simulations extremely computationally demanding, which in turn means that accurately modeling the formation of planetary systems requires the use of high-performance methods. The planet formation code Mercury-Ares was developed to address these challenges and, since its first implementation, has been used in multiple exoplanetary and Solar System studies. Mercury-Ares is a parallel n-body code that builds on the widely used Mercury code and is capable of modeling the growth and migration of forming planets, the interactions between planetary bodies and the disk gas, as well as the evolving impact flux of planetesimals on forming planets across the different stages of their formation process. In this work we provide the up-to-date overview of its physical modeling capabilities and the first detailed description of its high-performance implementation based on the OpenMP directive-based parallelism for shared memory environments, to harness the multi-thread and vectorization features of modern processor architectures.
16 pages, 4 figures, version accepted for publication on Astronomy & Computing
References in corpus (13)
- The imprint of exoplanet formation history on observable present-day spectra of hot Jupiters
- Global Models of Planet Formation and Evolution
- The GENGA Code: Gravitational Encounters in N-body simulations with GPU Acceleration
- High gas/dust size ratio indicating efficient radial drift in the mm-faint CX Tau disk
- The origin of the high metallicity of close-in giant exoplanets: Combined effect of the resonant and aerodynamic shepherding
- Capture of Solids by Growing Proto-gas Giants: Effects of Gap Formation and Supply-limited Growth
- Jovian Early Bombardment: planetesimal erosion in the inner asteroid belt
- Exploring the link between star and planet formation with Ariel
- Simulations of Dynamical Gas-Dust Circumstellar Disks: Going Beyond the Epstein Regime
- Oxygen depletion in giant planets with different formation histories
- Mercury and OrbFit packages for the numerical integration of planetary systems: implementation of the Yarkovsky and YORP effects
- The GAPS program at TNG XLVII: The unusual formation history of V1298 Tau
- Chondrule formation by collisions of planetesimals containing volatiles triggered by Jupiter's formation