On the penetration of large-scale flows into stellar radiative zones

Fuente: arXiv
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Main Authors: Korre, Lydia, Featherstone, Nicholas A.
Format: Preprint
Published: 2024
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author Korre, Lydia
Featherstone, Nicholas A.
author_facet Korre, Lydia
Featherstone, Nicholas A.
contents The propagation of meridional circulation below the base of the convection zone of low-mass stars may play a crucial role in the transport of angular momentum and also significantly contribute to the transport of chemical species and magnetic fields within their stable radiative zone. We systematically study these large-scale mean flows by performing three-dimensional (3D) global numerical simulations in a spherical shell that consists of a convection zone (CZ) overlying a stably stratified region. We find that the meridional flows can penetrate distances as large as $\sim 0.21r_o$ (where $r_o$ is the outer radius) below the base of the convection zone, provided that the Eddington-Sweet timescale $t_{ES}$ is much shorter than the viscous timescale $t_ν$ as measured by the parameter $σ=(t_{ES}/t_ν)^{1/2}$. In the solar-like regime where $σ\lesssim 1$ in the upper radiative zone (RZ), we find that the angular momentum transport in the deep RZ is determined primarily by the action of the Coriolis force on meridional flows. In contrast, in models run in the $σ> 1$ regime, the meridional flows become weaker and the viscous effects dominate. We find that the penetration lengthscale $δ_{MC}$ of these mean flows when $σ\lesssim 1$ is proportional to $σ^{-0.22}$. Our findings may provide a better understanding of the role of the meridional flows in the dynamics of the solar interior and inform future numerical studies that are focused on capturing solar-like dynamics self-consistently.
format Preprint
id arxiv_https___arxiv_org_abs_2401_10675
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle On the penetration of large-scale flows into stellar radiative zones
Korre, Lydia
Featherstone, Nicholas A.
Solar and Stellar Astrophysics
Fluid Dynamics
The propagation of meridional circulation below the base of the convection zone of low-mass stars may play a crucial role in the transport of angular momentum and also significantly contribute to the transport of chemical species and magnetic fields within their stable radiative zone. We systematically study these large-scale mean flows by performing three-dimensional (3D) global numerical simulations in a spherical shell that consists of a convection zone (CZ) overlying a stably stratified region. We find that the meridional flows can penetrate distances as large as $\sim 0.21r_o$ (where $r_o$ is the outer radius) below the base of the convection zone, provided that the Eddington-Sweet timescale $t_{ES}$ is much shorter than the viscous timescale $t_ν$ as measured by the parameter $σ=(t_{ES}/t_ν)^{1/2}$. In the solar-like regime where $σ\lesssim 1$ in the upper radiative zone (RZ), we find that the angular momentum transport in the deep RZ is determined primarily by the action of the Coriolis force on meridional flows. In contrast, in models run in the $σ> 1$ regime, the meridional flows become weaker and the viscous effects dominate. We find that the penetration lengthscale $δ_{MC}$ of these mean flows when $σ\lesssim 1$ is proportional to $σ^{-0.22}$. Our findings may provide a better understanding of the role of the meridional flows in the dynamics of the solar interior and inform future numerical studies that are focused on capturing solar-like dynamics self-consistently.
title On the penetration of large-scale flows into stellar radiative zones
topic Solar and Stellar Astrophysics
Fluid Dynamics
url https://arxiv.org/abs/2401.10675