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Stellar mergers and common-envelope evolution
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Stellar mergers and common-envelope evolution are fast (dynamical-timescale) interactions in binary stars that drastically alter their evolution. They are key to understanding a plethora of astrophysical phenomena. Stellar mergers are thought to produce blue straggler stars, blue supergiants, and stars with peculiar rotation and surface chemical abundances. Common-envelope evolution is proposed as a key stage in the formation of gravitational wave sources, X-ray binaries, type Ia supernovae, cataclysmic variables, and other systems. A significant fraction (tens of percent) of binary stars undergo such a phase during their evolution. In this chapter, we first discuss processes leading to a stellar merger or common-envelope phase. We then explain these complex interactions, starting from underlying physical principles like entropy sorting in stellar mergers and the energy formalism in common envelopes. This is followed by a more complete picture revealed by three-dimensional (magneto)hydrodynamical simulations. The outcomes of these interactions are discussed comprehensively and special emphasis is given to the role of magnetic fields. Both stellar mergers and common-envelope evolution remain far from fully understood, and we conclude by highlighting open questions in their study.
Forward citations
Cited by 3 Pith papers
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A Framework for Linking Pre- and Post-Common Envelope Binary Properties with Star Clusters: The First Demonstration with a Massive White Dwarf+M Dwarf Binary in Alessi 12
A cluster white-dwarf/M-dwarf binary with a 6.99-hour orbit provides the first precise pre/post-common-envelope benchmark, implying a 5.4-solar-mass progenitor and a common-envelope efficiency of either ≈0.99 (mid-AGB...
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Magnetic field generation in mergers of massive main-sequence stars
A 3D MHD simulation of a 9+8 solar-mass main-sequence star merger amplifies magnetic fields into a large-scale, mostly toroidal configuration, supporting mergers as a source of magnetic massive stars.
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A blue-straggler merger scenario origin for the $\gamma$~Persei binary system
γ Persei's primary likely formed from the merger of two main-sequence stars, explaining why it appears younger than its binary companion.
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