English

Revisiting the Impact of Dust Production from Carbon-Rich Wolf-Rayet Binaries

Solar and Stellar Astrophysics 2020-08-05 v1 Astrophysics of Galaxies

Abstract

We present a dust spectral energy distribution (SED) and binary stellar population analysis revisiting the dust production rates (DPRs) in the winds of carbon-rich Wolf-Rayet (WC) binaries and their impact on galactic dust budgets. DustEM SED models of 19 Galactic WC ``dustars" reveal DPRs of M˙d1010106\dot{M}_d\sim10^{-10}-10^{-6} M_\odot yr1^{-1} and carbon dust condensation fractions, χC\chi_C, between 0.00240%0.002 - 40\%. A large (0.11.00.1 - 1.0 μ\mum) dust grain size composition is favored for efficient dustars where χC1%\chi_C\gtrsim1\%. Results for dustars with known orbital periods verify a power-law relation between χC\chi_C, orbital period, WC mass-loss rate, and wind velocity consistent with predictions from theoretical models of dust formation in colliding-wind binaries. We incorporated dust production into Binary Population and Spectral Synthesis (BPASS) models to analyze dust production rates from WC dustars, asymptotic giant branch stars (AGBs), red supergiants (RSGs), and core-collapse supernovae (SNe). BPASS models assuming constant star formation (SF) and a co-eval 10610^6 M_\odot stellar population were performed at low, Large Magellanic Cloud (LMC)-like, and solar metallicities (Z = 0.001, 0.008, and 0.020). Both constant SF and co-eval models show that SNe are net dust destroyers at all metallicities. Constant SF models at LMC-like metallicities show that AGB stars slightly outproduce WC binaries and RSGs by factors of 232-3, whereas at solar metallicites WC binaries are the dominant source of dust for 60\sim60 Myr until the onset of AGBs, which match the dust input of WC binaries. Co-eval population models show that for "bursty" SF, AGB stars dominate dust production at late times (t70t\gtrsim 70 Myr).

Keywords

Cite

@article{arxiv.2006.08695,
  title  = {Revisiting the Impact of Dust Production from Carbon-Rich Wolf-Rayet Binaries},
  author = {Ryan M. Lau and J. J. Eldridge and Matthew J. Hankins and Astrid Lamberts and Itsuki Sakon and Peredur M. Williams},
  journal= {arXiv preprint arXiv:2006.08695},
  year   = {2020}
}

Comments

34 pages, 12 figures, 7 tables, Accepted for publication in ApJ