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The photometric variability of massive stars due to gravity waves excited by core convection.
Anders, Evan H; Lecoanet, Daniel; Cantiello, Matteo; Burns, Keaton J; Hyatt, Benjamin A; Kaufman, Emma; Townsend, Richard H D; Brown, Benjamin P; Vasil, Geoffrey M; Oishi, Jeffrey S; Jermyn, Adam S.
Afiliación
  • Anders EH; Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA), Northwestern University, Evanston, IL USA.
  • Lecoanet D; Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA), Northwestern University, Evanston, IL USA.
  • Cantiello M; Department of Engineering Sciences & Applied Mathematics, Northwestern University, Evanston, IL USA.
  • Burns KJ; Center for Computational Astrophysics, Flatiron Institute, New York, New York USA.
  • Hyatt BA; Department of Astrophysical Sciences, Princeton University, Princeton, NJ USA.
  • Kaufman E; Center for Computational Astrophysics, Flatiron Institute, New York, New York USA.
  • Townsend RHD; Department of Mathematics, Massachusetts Institute of Technology, Cambridge, MA USA.
  • Brown BP; Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA), Northwestern University, Evanston, IL USA.
  • Vasil GM; Department of Engineering Sciences & Applied Mathematics, Northwestern University, Evanston, IL USA.
  • Oishi JS; Center for Interdisciplinary Exploration and Research in Astrophysics (CIERA), Northwestern University, Evanston, IL USA.
  • Jermyn AS; Department of Physics & Astronomy, Northwestern University, Evanston, IL USA.
Nat Astron ; 7(10): 1228-1234, 2023.
Article en En | MEDLINE | ID: mdl-37859938
ABSTRACT
Massive stars die in catastrophic explosions that seed the interstellar medium with heavy elements and produce neutron stars and black holes. Predictions of the explosion's character and the remnant mass depend on models of the star's evolutionary history. Models of massive star interiors can be empirically constrained by asteroseismic observations of gravity wave oscillations. Recent photometric observations reveal a ubiquitous red noise signal on massive main sequence stars; a hypothesized source of this noise is gravity waves driven by core convection. We present three-dimensional simulations of massive star convection extending from the star's centre to near its surface, with realistic stellar luminosities. Using these simulations, we predict the photometric variability due to convectively driven gravity waves at the surfaces of massive stars, and find that gravity waves produce photometric variability of a lower amplitude and lower characteristic frequency than the observed red noise. We infer that the photometric signal of gravity waves excited by core convection is below the noise limit of current observations, and thus the red noise must be generated by an alternative process.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: Nat Astron Año: 2023 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: Nat Astron Año: 2023 Tipo del documento: Article