English

The Formation and Evolution of Wide-Orbit Stellar Multiples In Magnetized Clouds

Astrophysics of Galaxies 2020-01-08 v1

Abstract

Stars rarely form in isolation. Nearly half of the stars in the Milky Way have a companion, and this fraction increases in star-forming regions. However, why some dense cores and filaments form bound pairs while others form single stars remains unclear. We present a set of three-dimensional, gravo-magnetohydrodynamic simulations of turbulent star-forming clouds, aimed at understanding the formation and evolution of multiple-star systems formed through large scale (>~10310^3 AU) turbulent fragmentation. We investigate three global magnetic field strengths, with global mass-to-flux ratios of μϕ\mu_\phi=2, 8, and 32. The initial separations of protostars in multiples depends on the global magnetic field strength, with stronger magnetic fields (e.g., μϕ\mu_\phi=2) suppressing fragmentation on smaller scales. The overall multiplicity fraction (MF) is between 0.4-0.6 for our strong and intermediate magnetic field strengths, which is in agreement with observations. The weak field case has a lower fraction. The MF is relatively constant throughout the simulations, even though stellar densities increase as collapse continues. While the MF rarely exceeds 60% in all three simulations, over 80% of all protostars are part of a binary system at some point. We additionally find that the distribution of binary spin mis-alignment angles is consistent with a randomized distribution. In all three simulations, several binaries originate with wide separations and dynamically evolve to <~ 10210^2 AU separations. We show that a simple model of mass accretion and dynamical friction with the gas can explain this orbital evolution.

Keywords

Cite

@article{arxiv.1911.07863,
  title  = {The Formation and Evolution of Wide-Orbit Stellar Multiples In Magnetized Clouds},
  author = {Aaron T. Lee and Stella S. R. Offner and Kaitlin M. Kratter and Rachel A. Smullen and Pak Shing Li},
  journal= {arXiv preprint arXiv:1911.07863},
  year   = {2020}
}

Comments

Accepted to ApJ. 28 pages, 23 figures, comments from the community welcomed