Nonlinear Mixed Modes in Red Giants
arXiv:1809.01727 · doi:10.3847/1538-4357/ab0204
Abstract
Turbulent motions in the convective envelope of red giants excite a rich spectrum of solar-like oscillation modes. Observations by CoRoT and Kepler have shown that the mode amplitudes increase dramatically as the stars ascend the red giant branch, i.e., as the frequency of maximum power, , decreases. Most studies nonetheless assume that the modes are well described by the linearized fluid equations. We investigate to what extent the linear approximation is justified as a function of stellar mass and , focusing on dipole mixed modes with frequency near . A useful measure of a mode's nonlinearity is the product of its radial wavenumber and its radial displacement, (i.e., its shear). We show that , implying that the nonlinearity of mixed modes increases significantly as a star evolves. The modes are weakly nonlinear () for and strongly nonlinear () for , with only a mild dependence on over the range we consider (). A weakly nonlinear mixed mode can excite secondary waves in the stellar core through the parametric instability, resulting in enhanced, but partial, damping of the mode. By contrast, a strongly nonlinear mode breaks as it propagates through the core and is fully damped there. Evaluating the impact of nonlinear effects on observables such as mode amplitudes and linewidths requires large mode network simulations. We plan to carry out such calculations in the future and investigate whether nonlinear damping can explain why some red giants exhibit dipole modes with unusually small amplitudes, known as depressed modes.
10 pages, 4 figures, matches version published in ApJ
References in corpus (41)
- Modules for Experiments in Stellar Astrophysics (MESA)
- Modules for Experiments in Stellar Astrophysics (MESA): Giant Planets, Oscillations, Rotation, and Massive Stars
- Modules for Experiments in Stellar Astrophysics (MESA): Binaries, Pulsations, and Explosions
- Modules for Experiments in Stellar Astrophysics (MESA): Convective Boundaries, Element Diffusion, and Massive Star Explosions
- Gravity modes as a way to distinguish between hydrogen- and helium-burning red giant stars
- Asteroseismology of Solar-Type and Red-Giant Stars
- GYRE: An open-source stellar oscillation code based on a new Magnus Multiple Shooting Scheme
- Fast core rotation in red-giant stars revealed by gravity-dominated mixed modes
- Spin down of the core rotation in red giants
- Seismic evidence for a rapidly rotating core in a lower-giant-branch star observed with Kepler
- Seismic constraints on the radial dependence of the internal rotation profiles of six Kepler subgiants and young red giants
- Asteroseismic classification of stellar populations among 13000 red giants observed by Kepler
- Characterization of the power excess of solar-like oscillations in red giants with Kepler
- The relation between and for solar-like oscillations
- Theoretical amplitudes and lifetimes of non-radial solar-like oscillations in red giants
- Mixed modes in red giants: a window on stellar evolution
- Angular momentum transport by heat-driven g-modes in slowly pulsating B stars
- Asteroseismology of red giants from the first four months of Kepler data: Global oscillation parameters for 800 stars
- Mixed modes in red-giant stars observed with CoRoT
- Asteroseismology Can Reveal Strong Internal Magnetic Fields in Red Giant Stars
- Seismic evidence for a weak radial differential rotation in intermediate-mass core helium burning stars
- Giant star seismology
- A prevalence of dynamo-generated magnetic fields in the cores of intermediate-mass stars
- Excitation of solar-like oscillations across the HR diagram
- Seismic diagnostics for transport of angular momentum in stars 2. Interpreting observed rotational splittings of slowly-rotating red giant stars
- Nonlinear Tides in Close Binary Systems
- Period spacings in red giants I. Disentangling rotation and revealing core structure discontinuities
- Orbital decay of hot Jupiters due to nonlinear tidal dissipation within solar-type hosts
- Spinning down newborn neutron stars: nonlinear development of the r-mode instability
- NGC 6819: testing the asteroseismic mass scale, mass loss, and evidence for products of non-standard evolution
- Bayesian peak bagging analysis of 19 low-mass low-luminosity red giants observed with Kepler
- On internal wave breaking and tidal dissipation near the centre of a solar-type star
- Dipole modes with depressed amplitudes in red giants are mixed modes
- Period spacings in red giants IV: Toward a complete description of the mixed-mode pattern
- Theoretical power spectra of mixed modes in low mass red giant stars
- Tidal Dissipation in WASP-12
- Study of KIC 8561221 observed by Kepler: an early red giant showing depressed dipolar modes
- Inferring mode inertias in evolved solar-like stars
- Suppression of quadrupole and octupole modes in red giants observed by Kepler
- Amplitude and lifetime of radial modes in red giant star spectra observed by Kepler
- A Nonlinear Coupling Network to Simulate the Development of the r-mode Instablility in Neutron Stars II. Dynamics
Cited by in corpus (8)
- Probing the interior physics of stars through asteroseismology
- Magneto-gravity wave packet dynamics in strongly magnetised cores of evolved stars
- Photometric Analysis of the OGLE Heartbeat Stars
- Tidal Asteroseismology: Possible Evidence of Non-linear Mode Coupling in an Equilibrium State in Kepler Eclipsing Binary KIC 3230227
- Resonant Mode Coupling in Scuti Stars
- Non-linear Three-mode Coupling of Gravity Modes in Rotating Slowly Pulsating B Stars: Stationary Solutions and Modeling Potential
- Asymptotic power spectra and visibilities of damped mixed modes
- Damping of Oscillations in Red Giants by Resonant Mode Coupling