Seismic signature of electron degeneracy in the core of red giants: hints for mass transfer between close red-giant companions
arXiv:2108.11848 · doi:10.1051/0004-6361/202142094
Abstract
The detection of mixed modes in red giants with space missions CoRoT and Kepler has revealed their deep internal structure. These modes allow us to characterize the pattern of pressure modes (through the measurement of their asymptotic frequency separation ) and the pattern of gravity modes (through the determination of their asymptotic period spacing ). It has been shown that red giant branch (RGB) stars regroup on a well-defined sequence in the - plane. Our first goal is to theoretically explain the features of this sequence and understand how it can be used to probe the interiors of red giants. Using a grid of red giant models computed with MESA, we demonstrate that red giants join the - sequence whenever electron degeneracy becomes strong in the core. We argue that this can be used to estimate the central densities of these stars, and potentially to measure the amount of core overshooting during the main sequence part of the evolution. We also investigate a puzzling subsample of red giants that are located below the RGB sequence, in contradiction with stellar evolution models. After checking the measurements of the asymptotic period spacing for these stars, we show that they are mainly intermediate-mass red giants. This is doubly peculiar because these stars should have nondegenerate cores and are expected to be located well above the RGB sequence. We show that these peculiarities are well accounted for if these stars result from the interaction between two low-mass () close companions during the red giant branch phase. If the secondary component has already developed a degenerate core before mass transfer begins, it becomes an intermediate-mass giant with a degenerate core. The secondary star is then located below the degenerate sequence, in agreement with the observations.
Accepted in A&A, 15 pages, 13 figures
References in corpus (7)
- Modules for Experiments in Stellar Astrophysics (MESA)
- 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
- Seismic evidence for near solid-body rotation in two Kepler subgiants and implications for angular momentum transport
- Asteroseismic Fingerprints of Stellar Mergers
- Asteroseismology of evolved stars with EGGMiMoSA I. Theoretical mixed-mode patterns from the subgiant to the RGB phase
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