Predicting the Slowing of Stellar Differential Rotation by Instability-Driven Turbulence

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Main Authors: Tripathi, B., Barker, A. J., Fraser, A. E., Terry, P. W., Zweibel, E. G.
Format: Preprint
Published: 2024
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author Tripathi, B.
Barker, A. J.
Fraser, A. E.
Terry, P. W.
Zweibel, E. G.
author_facet Tripathi, B.
Barker, A. J.
Fraser, A. E.
Terry, P. W.
Zweibel, E. G.
contents Differentially rotating stars and planets transport angular momentum internally due to turbulence at rates that have long been a challenge to predict reliably. We develop a self-consistent saturation theory, using a statistical closure approximation, for hydrodynamic turbulence driven by the axisymmetric Goldreich--Schubert--Fricke (GSF) instability at the stellar equator with radial differential rotation. This instability arises when fast thermal diffusion eliminates the stabilizing effects of buoyancy forces in a system where a stabilizing entropy gradient dominates over the destabilizing angular momentum gradient. Our turbulence closure invokes a dominant three-wave coupling between pairs of linearly unstable eigenmodes and a near-zero frequency, viscously damped eigenmode that features latitudinal jets. We derive turbulent transport rates of momentum and heat, and provide them in analytic forms. Such formulae, free of tunable model parameters, are tested against direct numerical simulations; the comparison shows good agreement. They improve upon prior quasi-linear or ``parasitic saturation" models containing a free parameter. Given model correspondences, we also extend this theory to heat and compositional transport for axisymmetric thermohaline instability-driven turbulence in certain regimes.
format Preprint
id arxiv_https___arxiv_org_abs_2403_07395
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Predicting the Slowing of Stellar Differential Rotation by Instability-Driven Turbulence
Tripathi, B.
Barker, A. J.
Fraser, A. E.
Terry, P. W.
Zweibel, E. G.
Solar and Stellar Astrophysics
Earth and Planetary Astrophysics
Fluid Dynamics
Differentially rotating stars and planets transport angular momentum internally due to turbulence at rates that have long been a challenge to predict reliably. We develop a self-consistent saturation theory, using a statistical closure approximation, for hydrodynamic turbulence driven by the axisymmetric Goldreich--Schubert--Fricke (GSF) instability at the stellar equator with radial differential rotation. This instability arises when fast thermal diffusion eliminates the stabilizing effects of buoyancy forces in a system where a stabilizing entropy gradient dominates over the destabilizing angular momentum gradient. Our turbulence closure invokes a dominant three-wave coupling between pairs of linearly unstable eigenmodes and a near-zero frequency, viscously damped eigenmode that features latitudinal jets. We derive turbulent transport rates of momentum and heat, and provide them in analytic forms. Such formulae, free of tunable model parameters, are tested against direct numerical simulations; the comparison shows good agreement. They improve upon prior quasi-linear or ``parasitic saturation" models containing a free parameter. Given model correspondences, we also extend this theory to heat and compositional transport for axisymmetric thermohaline instability-driven turbulence in certain regimes.
title Predicting the Slowing of Stellar Differential Rotation by Instability-Driven Turbulence
topic Solar and Stellar Astrophysics
Earth and Planetary Astrophysics
Fluid Dynamics
url https://arxiv.org/abs/2403.07395