English

The critical role of clumping in line-driven disc winds

Astrophysics of Galaxies 2025-12-05 v1 High Energy Astrophysical Phenomena

Abstract

Radiation pressure on spectral lines is a promising mechanism for powering disc winds from accreting white dwarfs (AWDs) and active galactic nuclei (AGN). However, in radiation-hydrodynamic simulations, overionization reduces line opacity and quenches the line force, which suppresses outflows. Here, we show that small-scale clumping can resolve this problem. Adopting the microclumping approximation, our new simulations demonstrate that even modest volume filling factors (fV0.10.01f_V \sim 0.1-0.01) can dramatically increase the wind mass-loss rate by lowering its ionization state -- raising M˙wind\dot{M}_{\rm wind} and yielding M˙wind/M˙acc ⁣ ⁣104\dot{M}_{\rm wind}/\dot{M}_{\rm acc}\!\gtrsim\!10^{-4} for such modest filling factors. Clumpy wind models produce the UV resonance lines that are absent from smooth wind models. They can also reprocess a significant fraction of the disc luminosity and thus dramatically modify the broad-band optical/UV SED. Given that theory and observations indicate that disc winds are intrinsically inhomogeneous, clumping offers a physically motivated solution. Together, these results provide the first robust, self-consistent demonstration that clumping can reconcile line-driven wind theory with observations across AWDs and AGNs.

Keywords

Cite

@article{arxiv.2512.05029,
  title  = {The critical role of clumping in line-driven disc winds},
  author = {Amin Mosallanezhad and Christian Knigge and Nicolas Scepi and Knox S. Long and James H. Matthews and Stuart A. Sim and Austen Wallis},
  journal= {arXiv preprint arXiv:2512.05029},
  year   = {2025}
}

Comments

9 pages, 5 figures, 1 table, accepted for publication in MNRAS