Self-consistent 2D models of fast rotating early-type star
F. Espinosa Lara (1), M. Rieutord (1) ((1) IRAP, Toulouse, University, CNRS)

TL;DR
This paper presents the first self-consistent two-dimensional models of rapidly rotating early-type stars, capturing differential rotation and meridional circulation, and aligning well with observational data.
Contribution
It introduces a novel asymptotic spectral method for modeling fast-rotating stars, including differential rotation and meridional flows, with realistic baroclinic flows.
Findings
Differential rotation features a slow pole and fast equator.
Rotation increases with stellar mass, evolution, and metallicity.
Strong shear at the core-envelope interface promotes mixing.
Abstract
This work aims at presenting the first two-dimensional models of an isolated rapidly rotating star that include the derivation of the differential rotation and meridional circulation in a self-consistent way.We use spectral methods in multidomains, together with a Newton algorithm to determine the steady state solutions including differential rotation and meridional circulation for an isolated non-magnetic, rapidly rotating early-type star. In particular we devise an asymptotic method for small Ekman numbers (small viscosities) that removes the Ekman boundary layer and lifts the degeneracy of the inviscid baroclinic solutions.For the first time, realistic two-dimensional models of fast-rotating stars are computed with the actual baroclinic flows that predict the differential rotation and the meridional circulation for intermediate-mass and massive stars. These models nicely compare with…
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