Stellar irradiated discs and implications on migration of embedded planets I: equilibrium discs
Bertram Bitsch, Aur\'elien Crida, Alessandro Morbidelli, Willy Kley, and Ian Dobbs-Dixon

TL;DR
This paper investigates how stellar irradiation and opacity influence the structure of equilibrium protoplanetary discs and their impact on the outward migration of embedded low-mass planets, with implications for planet formation.
Contribution
It provides a detailed analysis of disc thermodynamics considering stellar irradiation and opacity variations, revealing their effects on migration regions and disc structure.
Findings
Stellar irradiation dominates in outer disc regions, causing flaring.
Opacity-dependent transitions create bumps in disc aspect ratio.
Stellar irradiation reduces the outward migration zone for planets.
Abstract
The strength and direction of migration of low mass planets depends on the disc's thermodynamics. In discs where the viscous heating is balanced by radiative transport, the migration can be directed outwards, a process which extends the lifetime of growing planetary embryos. We investigate the influence of opacity and stellar irradiation on the disc thermodynamics. Utilizing the resulting disc structure, we determine the regions of outward migration. We perform two-dimensional numerical simulations of equilibrium discs with viscous heating, radiative cooling and stellar irradiation. We use the hydrodynamical code NIRVANA that includes a full tensor viscosity and stellar irradiation, as well as a two temperature solver that includes radiation transport in the flux-limited diffusion approximation. The migration is studied by using torque formulae. In the constant opacity case, we…
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