English

Super-Eddington stellar winds: unifying radiative-enthalpy vs. flux-driven models

Solar and Stellar Astrophysics 2017-11-08 v1

Abstract

We derive semi-analytic solutions for optically thick, super-Eddington stellar winds, induced by an assumed steady energy addition ΔE˙\Delta {\dot E} concentrated around a near-surface heating radius RR in a massive star of central luminosity LL_\ast. We show that obtaining steady wind solutions requires both that the resulting total luminosity Lo=L+ΔE˙L_o = L_\ast + \Delta {\dot E} exceed the Eddington luminosity, ΓoLo/LEdd>1\Gamma_o \equiv L_o/L_{Edd} > 1, and that the induced mass loss rate be such that the "photon-tiring" parameter mM˙GM/RLo11/Γom \equiv {\dot M} GM/R L_o \le 1-1/\Gamma_o, ensuring the luminosity is sufficient to overcome the gravitational potential GM/RGM/R. Our analysis unifies previous super-Eddington wind models that either: (1) assumed a direct radiative flux-driving without accounting for the advection of radiative enthalpy that can become important in such an optically thick flow; or (2) assumed that such super-Eddington outflows are adiabatic, neglecting the effects of the diffusive radiative flux. We show that these distinct models become applicable in the asymptotic limits of small vs. large values of mΓom \Gamma_o , respectively. By solving the coupled differential equations for radiative diffusion and wind momentum, we obtain general solutions that effectively bridge the behaviours of these limiting models. Two key scaling results are for the terminal wind speed to escape speed, which is found to vary as v2/vesc2=Γo/(1+mΓo)1v_\infty^2/v_{esc}^2 = \Gamma_o/(1+m \Gamma_o) -1, and for the final observed luminosity LobsL_{ obs}, which for all allowed steady-solutions with m<11/Γom < 1 - 1/\Gamma_o, exceeds the Eddington luminosity, Lobs>LEddL_{obs} > L_{Edd}. Our super-Eddington wind solutions have potential applicability for modeling phases of eruptive mass loss from massive stars, classical novae, and the remnants of stellar mergers.

Keywords

Cite

@article{arxiv.1708.07790,
  title  = {Super-Eddington stellar winds: unifying radiative-enthalpy vs. flux-driven models},
  author = {Stanley P. Owocki and Richard H. D. Townsend and Eliot Quataert},
  journal= {arXiv preprint arXiv:1708.07790},
  year   = {2017}
}

Comments

13 pages, 11 figures, accepted for MNRAS

R2 v1 2026-06-22T21:23:44.567Z