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Radiation and Magnetic Pressure Support in Accretion Disks around Supermassive Black Holes and The Physical Origin of the Extreme Ultraviolet to Soft X-ray Spectrum

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arxiv 2505.09671 v1 pith:X54NXWVZ submitted 2025-05-14 astro-ph.HE

classification astro-ph.HE
keywords accretiondisksmagneticpressureradiationaroundcomponenteddington
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We present the results of four three-dimensional radiation magnetohydrodynamic simulations of accretion disks around a $10^8$ solar mass black hole, which produce the far ultraviolet spectrum peak and demonstrate a robust physical mechanism to produce the extreme ultraviolet to soft X-ray power-law continuum component. The disks are fed from rotating tori and reach accretion rates ranging from $0.03$ to $4$ times the Eddington value. The disks become radiation pressure or magnetic pressure dominated depending on the relative timescales of radiative cooling and gas inflow. Magnetic pressure supported disks can form with or without net poloidal magnetic fields as long as the inflowing gas can cool quickly enough, which can typically happen when the accretion rate is low. We calculate the emerging spectra from these disks using multi-group radiation transport with realistic opacities and find that they typically peak around $10$ eV. At accretion rates close to or above the Eddington limit, a power-law component can appear for photon energies between $10$ eV and 1 keV with a spectral slope varying between $L_\nu\propto\nu^{-1}$ and $\nu^{-2}$, comparable to what is observed in radio quiet quasars. The disk with $3\%$ Eddington accretion rate does not exhibit this component. These high energy photons are produced in an optically thick region $\approx 30^{\circ}-45^{\circ}$ from the disk midplane by compressible bulk Comptonization within the converging accretion flow. Strongly magnetized disks that have a very small surface density will produce a spectrum that is very different from what is observed.

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Cited by 3 Pith papers

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Magnetosonic Waves as a Driver of Observed Temperature Fluctuation Patterns in AGN Accretion Disks

    astro-ph.HE 2025-06 conditional novelty 7.0 of 10

    Turbulent Maxwell stress in simulated AGN disks excites temperature waves that match observed slow inward and outward propagating fluctuations, implying magnetically dominated photospheres in observed AGN.

  2. Viscously Spreading Accretion Disks around Black Holes: Implications for TDEs, LFBOTs and other Transients

    astro-ph.HE 2025-12 conditional novelty 6.0 of 10

    Many late-time TDE plateaus can be reproduced by initially wide disks formed with redistributed angular momentum, while the same model with super-Eddington outflows explains AT2018cow's late emission with a 10-100 sol...

  3. Do Little Red Dots Vary?

    astro-ph.GA 2025-09 conditional novelty 6.0 of 10

    Super-Eddington accretion models can explain why little red dots show almost no variability, whereas standard sub-Eddington AGN variability models predict changes that should already have been seen.

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