Stellar evolution in the upper Hertzsprung-Russell diagram
C. Doom, J. P. De Grève, C. De Loore
Abstract
C. Doom, J. P. De Grève, C. De Loore
Abstract
Evolutionary computations for massive stars, including mass loss and overshooting from convective cores, are presented. Using these computations, a coherent picture of the evolution of massive stars in the upper H-R diagram is given. Different formation mechanisms for various groups of luminous stars are discussed. Eta Carinae is interpreted as a very massive star suffering from a high mass loss, induced by vibrational instabilities. The Hubble-Sandage variables are divided into two groups: the more luminous ones are interpreted as Eta Carinae-like objects, while the less luminous ones are post-red supergiant stars. The boundary masses of progenitors of W-R systems formed through different scenarios are discussed. The observed ratio of W-R stars to O stars is discussed.
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Evolutionary computations for massive stars, including mass loss and overshooting from convective cores, are presented. Using these computations, a coherent picture of the evolution of massive stars in the upper H-R diagram is given. Different formation mechanisms for various groups of luminous stars are discussed. Eta Carinae is interpreted as a very massive star suffering from a high mass loss, induced by vibrational instabilities. The Hubble-Sandage variables are divided into two groups: the more luminous ones are interpreted as Eta Carinae-like objects, while the less luminous ones are post-red supergiant stars. The boundary masses of progenitors of W-R systems formed through different scenarios are discussed. The observed ratio of W-R stars to O stars is discussed.
Key concepts: Physics, Hertzsprung–Russell diagram, Astrophysics, Stars, Supergiant, Astronomy, Stellar evolution, T Tauri star