The pulsation modes of the pre-white dwarf PG 1159-035
J. E. S. Costa, S. O. Kepler, D. E. Winget, M. S. O'Brien, S. D., Kawaler, A. F. M. Costa, O. Giovannini, A. Kanaan, A. S. Mukadam, F., Mullally, A. Nitta, J. L. Proven\c{c}al, H. Shipman, M. A. Wood, T. J., Ahrens, A. Grauer, M. Kilic, P. A. Bradley, K. Sekiguchi, R. Crowe

TL;DR
This study extensively analyzes the pulsation modes of the pre-white dwarf PG 1159-035, identifying a record number of modes, estimating stellar parameters, and exploring mode trapping, rotation, and magnetic field characteristics.
Contribution
The paper significantly increases the known pulsation modes in PG 1159-035 and provides detailed insights into its internal structure and dynamics using multi-epoch WET data.
Findings
Identified 198 pulsation modes in PG 1159-035.
Estimated stellar mass as 0.59 solar masses.
Determined rotational period of approximately 1.39 days.
Abstract
PG 1159-035, a pre-white dwarf with T_eff=140,000 K, is the prototype of both two classes: the PG1159 spectroscopic class and the DOV pulsating class. Previous studies of PG 1159-035 photometric data obtained with the Whole Earth Telescope (WET) showed a rich frequency spectrum allowing the identification of 122 pulsation modes. In this work, we used all available WET photometric data from 1983, 1985, 1989, 1993 and 2002 to identify the pulsation periods and identified 76 additional pulsation modes, increasing to 198 the number of known pulsation modes in PG 1159-035, the largest number of modes detected in any star besides the Sun. From the period spacing we estimated a mass M = 0.59 +/- 0.02 solar masses for PG 1159-035, with the uncertainty dominated by the models, not the observation. Deviations in the regular period spacing suggest that some of the pulsation modes are trapped, even…
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