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Mixing in massive stellar mergers

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arxiv 0707.3021 v2 submitted 2007-07-20 astro-ph

classification astro-ph
keywords mixingstarsmergershydrodynamicstellartypealgorithmclusters
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abstract

The early evolution of dense star clusters is possibly dominated by close interactions between stars, and physical collisions between stars may occur quite frequently. Simulating a stellar collision event can be an intensive numerical task, as detailed calculations of this process require hydrodynamic simulations in three dimensions. We present a computationally inexpensive method in which we approximate the merger process, including shock heating, hydrodynamic mixing and mass loss, with a simple algorithm based on conservation laws and a basic qualitative understanding of the hydrodynamics of stellar mergers. The algorithm relies on Archimedes' principle to dictate the distribution of the fluid in the stable equilibrium situation. We calibrate and apply the method to mergers of massive stars, as these are expected to occur in young and dense star clusters. We find that without the effects of microscopic mixing, the temperature and chemical composition profiles in a collision product can become double-valued functions of enclosed mass. Such an unphysical situation is mended by simulating microscopic mixing as a post-collision effect. In this way we find that head-on collisions between stars of the same spectral type result in substantial mixing, while mergers between stars of different spectral type, such as type B and O stars ($\sim$10 and $\sim$40\msun respectively), are subject to relatively little hydrodynamic mixing.

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  1. Stellar-mass black holes in young massive and open stellar clusters -- VI. Role of external galactic field

    astro-ph.GA 2025-05 conditional novelty 6.0 of 10

    Even strongly tidally stripped young star clusters continue to form dynamical black hole mergers and Gaia-BH-like BH-main-sequence binaries, with nearly unchanged merger property distributions.

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