Ionized envelopes around protoplanets and the role of radiative feedback in gas accretion

Fuente: arXiv
Saved in:
Bibliographic Details
Main Authors: Montesinos, Matías, Garrido-Deutelmoser, Juan, Cuadra, Jorge, Sucerquia, Mario, Cuello, Nicolás, Schreiber, Matthias R., Ronco, María Paula, Guilera, Octavio M.
Format: Preprint
Published: 2025
Subjects:
Online Access:
Tags: Add Tag
No Tags, Be the first to tag this record!
_version_ 1866916656984358912
author Montesinos, Matías
Garrido-Deutelmoser, Juan
Cuadra, Jorge
Sucerquia, Mario
Cuello, Nicolás
Schreiber, Matthias R.
Ronco, María Paula
Guilera, Octavio M.
author_facet Montesinos, Matías
Garrido-Deutelmoser, Juan
Cuadra, Jorge
Sucerquia, Mario
Cuello, Nicolás
Schreiber, Matthias R.
Ronco, María Paula
Guilera, Octavio M.
contents Planetary growth within protoplanetary disks involves accreting material from their surroundings, yet the underlying mechanisms and physical conditions of the accreting gas remain debated. This study aims to investigate the dynamics and thermodynamic properties of accreting gas giants, and to characterize the envelope that forms near the planet during accretion. We employ three-dimensional hydrodynamical simulations of a Jupiter-mass planet embedded in a viscous gaseous disk. Our models incorporate a non-isothermal energy equation to compute gas and radiation energy diffusion and include radiative feedback from the planet. Results indicate that gas accretion occurs supersonically towards the planet, forming an ionized envelope that extends from the planetary surface up to 0.2 times the Hill radius in the no-feedback model, and up to 0.4 times the Hill radius in the feedback model. The envelope's radius, or ionization radius, acts as a boundary halting supersonic gas inflow and is pivotal for estimating accretion rates and H$α$ emission luminosities. Including radiative feedback increases accretion rates, especially within the ionization radius and from areas to the right of the planet when the star is positioned to the left. The accretion luminosities calculated at the ionization radius are substantially lower than those calculated at the Hill radius, highlighting potential misinterpretations in the non-detection of H$α$ emissions as indicators of ongoing planet formation.
format Preprint
id arxiv_https___arxiv_org_abs_2503_15256
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Ionized envelopes around protoplanets and the role of radiative feedback in gas accretion
Montesinos, Matías
Garrido-Deutelmoser, Juan
Cuadra, Jorge
Sucerquia, Mario
Cuello, Nicolás
Schreiber, Matthias R.
Ronco, María Paula
Guilera, Octavio M.
Earth and Planetary Astrophysics
Planetary growth within protoplanetary disks involves accreting material from their surroundings, yet the underlying mechanisms and physical conditions of the accreting gas remain debated. This study aims to investigate the dynamics and thermodynamic properties of accreting gas giants, and to characterize the envelope that forms near the planet during accretion. We employ three-dimensional hydrodynamical simulations of a Jupiter-mass planet embedded in a viscous gaseous disk. Our models incorporate a non-isothermal energy equation to compute gas and radiation energy diffusion and include radiative feedback from the planet. Results indicate that gas accretion occurs supersonically towards the planet, forming an ionized envelope that extends from the planetary surface up to 0.2 times the Hill radius in the no-feedback model, and up to 0.4 times the Hill radius in the feedback model. The envelope's radius, or ionization radius, acts as a boundary halting supersonic gas inflow and is pivotal for estimating accretion rates and H$α$ emission luminosities. Including radiative feedback increases accretion rates, especially within the ionization radius and from areas to the right of the planet when the star is positioned to the left. The accretion luminosities calculated at the ionization radius are substantially lower than those calculated at the Hill radius, highlighting potential misinterpretations in the non-detection of H$α$ emissions as indicators of ongoing planet formation.
title Ionized envelopes around protoplanets and the role of radiative feedback in gas accretion
topic Earth and Planetary Astrophysics
url https://arxiv.org/abs/2503.15256