Asteroseismic sensitivity to internal rotation along the red-giant branch
arXiv:2003.08905 · doi:10.1051/0004-6361/201936947
Abstract
Transport of angular momentum in stellar interiors is currently not well understood. Asteroseismology can provide us with estimates of internal rotation of stars and thereby advances our understanding of angular momentum transport. We can measure core-rotation rates in red-giant stars and we can place upper bounds on surface-rotation rates using measurements of dipole () modes. Here, we aim to determine the theoretical sensitivity of modes of different spherical degree towards the surface rotation. Additionally, we aim to identify modes that can potentially add sensitivity at intermediate radii. We used asteroseismic rotational inversions to probe the internal stellar rotation profiles in red-giant models from the base of the red-giant branch up to the luminosity bump. We used the inversion method of multiplicative optimally localised averages (MOLA) to assess how well internal and surface rotation rates can be recovered from different mode sets and different synthetic rotation profiles. We confirm that dipole mixed modes are sufficient to set constraints on the average core-rotation rates in red giants. However, surface-rotation rates estimated with only dipole mixed modes are contaminated by the core rotation. We show that the sensitivity to the surface rotation decreases from the base of the red-giant branch until it reaches a minimum at 0.6-0.8 due to a glitch in the buoyancy frequency. Thereafter a narrow range of increased surface sensitivity just below the bump luminosity exists. Quadrupole and octopole modes have more sensitivity in the outer parts of the star. If observed, quadrupole and octopole modes enable us to distinguish between differential and solid body rotation in the convection zone. To obtain accurate estimates of rotation rates at intermediate radii, acoustic oscillation modes with a spherical degree of are needed.
accepted for publication in Astronomy and Astrophysics, revised manuscript after language editing
References in corpus (14)
- Modules for Experiments in Stellar Astrophysics (MESA): Pulsating Variable Stars, Rotation, Convective Boundaries, and Energy Conservation
- Slowing the Spins of Stellar Cores
- Mixed modes in red giants: a window on stellar evolution
- Angular momentum transport by heat-driven g-modes in slowly pulsating B stars
- Standard big bang nucleosynthesis and primordial CNO Abundances after Planck
- Asteroseismology and Interferometry
- Angular Momentum Transport via Internal Gravity Waves in Evolving Stars
- First Results From The Hertzsprung Song Telescope: Asteroseismology Of The G5 Subgiant Star {\Mu}Her
- Constraining the efficiency of angular momentum transport with asteroseismology of red giants: the effect of stellar mass
- Structural glitches near the cores of red giants revealed by oscillations in g-mode period spacings from stellar models
- Angular momentum redistribution by mixed modes in evolved low-mass stars. II. Spin-down of the core of red giants induced by mixed modes
- Angular momentum redistribution by mixed modes in evolved low-mass stars. I. Theoretical formalism
- Near-degeneracy effects on the frequencies of rotationally-split mixed modes in red giants
- A Diagnostic for Localizing Red Giant Differential Rotation
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- Mode Mixing and Rotational Splittings: I. Near-Degeneracy Effects Revisited
- Improved asteroseismic inversions for red-giant surface rotation rates
- The robustness of inferred envelope and core rotation rates of red-giant stars from asteroseismology
- Inverse analysis of asteroseismic data: a review
- Is there a unique asteroseismic interior model for the solar-like oscillating KIC 7747078?
- Impact of near-degeneracy effects on linear rotational inversions for red-giant stars