The critical role of clumping in line-driven disc winds

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Abstract

Radiation pressure on spectral lines is a promising mechanism for powering disc winds from accreting white dwarfs (AWDs) and active galactic nuclei (AGNs). 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 ($f_V \sim 0.1\!-\!0.01$) can dramatically increase the wind mass-loss rate by lowering its ionization state-raising $\dot{M}_{\rm wind}$ and yielding $\dot{M}_{\rm wind}/\dot{M}_{\rm acc}\!\gtrsim \!10^{-4}$ 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.

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Mosallanezhad, A., Knigge, C., Scepi, N., Long, K. S., Matthews, J. H., Sim, S. A., & Wallis, A. (2026). The critical role of clumping in line-driven disc winds. Monthly Notices of the Royal Astronomical Society, 545(3). https://doi.org/10.1093/mnras/staf2183

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