3D hydrodynamic simulations of massive main-sequence stars II. Convective excitation and spectra of internal gravity waves

Fuente: arXiv
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Main Authors: Thompson, William, Herwig, Falk, Woodward, Paul R., Mao, Huaqing, Denissenkov, Pavel, Bowman, Dominic M., Blouin, Simon
Format: Preprint
Published: 2023
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author Thompson, William
Herwig, Falk
Woodward, Paul R.
Mao, Huaqing
Denissenkov, Pavel
Bowman, Dominic M.
Blouin, Simon
author_facet Thompson, William
Herwig, Falk
Woodward, Paul R.
Mao, Huaqing
Denissenkov, Pavel
Bowman, Dominic M.
Blouin, Simon
contents Recent photometric observations of massive stars have identified a low-frequency power excess which appears as stochastic low-frequency variability in light curve observations. We present the oscillation properties of high resolution hydrodynamic simulations of a 25 $\mathrm{M}_\odot$ star performed with the PPMStar code. The model star has a convective core mass of $\approx\, 12\, \mathrm{M}_\odot$ and approximately half of the envelope simulated. From this simulation, we extract light curves from several directions, average them over each hemisphere, and process them as if they were real photometric observations. We show how core convection excites waves with a similar frequency as the convective time scale in addition to significant power across a forest of low and high angular degree $l$ modes. We find that the coherence of these modes is relatively low as a result of their stochastic excitation by core convection, with lifetimes on the order of 10s of days. Thanks to the still significant power at higher $l$ and this relatively low coherence, we find that integrating over a hemisphere produces a power spectrum that still contains measurable power up to the Brunt--Väisälä frequency. These power spectra extracted from the stable envelope are qualitatively similar to observations, with same order of magnitude yet lower characteristic frequency. This work further shows the potential of long-duration, high-resolution hydrodynamic simulations for connecting asteroseismic observations to the structure and dynamics of core convection and the convective boundary.
format Preprint
id arxiv_https___arxiv_org_abs_2303_06125
institution arXiv
publishDate 2023
record_format arxiv
spellingShingle 3D hydrodynamic simulations of massive main-sequence stars II. Convective excitation and spectra of internal gravity waves
Thompson, William
Herwig, Falk
Woodward, Paul R.
Mao, Huaqing
Denissenkov, Pavel
Bowman, Dominic M.
Blouin, Simon
Solar and Stellar Astrophysics
Recent photometric observations of massive stars have identified a low-frequency power excess which appears as stochastic low-frequency variability in light curve observations. We present the oscillation properties of high resolution hydrodynamic simulations of a 25 $\mathrm{M}_\odot$ star performed with the PPMStar code. The model star has a convective core mass of $\approx\, 12\, \mathrm{M}_\odot$ and approximately half of the envelope simulated. From this simulation, we extract light curves from several directions, average them over each hemisphere, and process them as if they were real photometric observations. We show how core convection excites waves with a similar frequency as the convective time scale in addition to significant power across a forest of low and high angular degree $l$ modes. We find that the coherence of these modes is relatively low as a result of their stochastic excitation by core convection, with lifetimes on the order of 10s of days. Thanks to the still significant power at higher $l$ and this relatively low coherence, we find that integrating over a hemisphere produces a power spectrum that still contains measurable power up to the Brunt--Väisälä frequency. These power spectra extracted from the stable envelope are qualitatively similar to observations, with same order of magnitude yet lower characteristic frequency. This work further shows the potential of long-duration, high-resolution hydrodynamic simulations for connecting asteroseismic observations to the structure and dynamics of core convection and the convective boundary.
title 3D hydrodynamic simulations of massive main-sequence stars II. Convective excitation and spectra of internal gravity waves
topic Solar and Stellar Astrophysics
url https://arxiv.org/abs/2303.06125