The impact of differential rotation on the stochastic excitation of acoustic modes in solar-like pulsators
Gabriel Biscarrat, Le\"ila Bessila, St\'ephane Mathis

TL;DR
This study investigates how differential rotation in solar-like stars affects the stochastic excitation of acoustic modes, revealing that differential rotation can significantly alter mode amplitudes and potentially hinder their detection.
Contribution
It provides the first theoretical predictions on the impact of differential rotation on acoustic mode excitation in solar-like stars using advanced modeling techniques.
Findings
Power injection into modes varies by up to 30% with differential rotation.
Anti-solar differential rotation inhibits axisymmetric mode excitation.
Differential rotation influences mode detectability in solar-like pulsators.
Abstract
Acoustic modes are excited by turbulent convection in the outer convective envelope of solar-like stars. Observational results from asteroseismic studies show that 44% of solar-like stars do not present detectable stochastically-excited acoustic modes. This phenomenon appears to be related to their rotation rate and magnetic activity. In a first paper, we showed that uniform rotation tends to diminish the mode amplitudes significantly. However, convective envelopes in solar-type stars are differentially rotating: the rotation rate difference between mid-latitudes and the equator can go up to 60%, as shown by recent asteroseismic works. In this paper, we examine the impact of differential rotation on the stochastic excitation of acoustic modes in solar-like stars. We provide theoretical predictions for the excitation of acoustic modes in a differentially rotating solar-like star. We use…
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Taxonomy
TopicsStellar, planetary, and galactic studies · Solar and Space Plasma Dynamics · Pulsars and Gravitational Waves Research
