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A two-stage formalism for common-envelope phases of massive stars

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arxiv 2209.05328 v1 pith:S4NVIUEF submitted 2022-09-12 astro-ph.SR astro-ph.HE

A two-stage formalism for common-envelope phases of massive stars

classification astro-ph.SR astro-ph.HE
keywords formalismcommon-envelopemassiveseparationsbinariesconvectiveenvelopemass
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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We propose a new simple formalism to predict the orbital separations after common-envelope phases with massive star donors. We focus on the fact that massive red supergiants tend to have a sizeable radiative layer between the dense helium core and the convective envelope. Our formalism treats the common-envelope phase in two stages: dynamical in-spiral through the outer convective envelope and thermal timescale mass transfer from the radiative intershell. With fiducial choices of parameters, the new formalism typically predicts much wider separations compared to the classical energy formalism. Moreover, our formalism predicts that final separations strongly depend on the donor evolutionary stage and companion mass. Our formalism provides a physically-motivated alternative option for population synthesis studies to treat common-envelope evolution. This treatment will impact on predictions for massive-star binaries, including gravitational-wave sources, X-ray binaries and stripped-envelope supernovae.

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