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Efficiency of Thin Magnetically-Arrested Disks Around Black Holes

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arxiv 1508.05323 v2 pith:MC7B25QD submitted 2015-08-21 astro-ph.HE gr-qc

classification astro-ph.HEgr-qc
keywords thindiskapproxsimulationsarounddeviationsdisksstate
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abstract

The radiative and jet efficiencies of thin magnetized accretion disks around black holes (BHs) are affected by BH spin and the presence of a magnetic field that, when strong, could lead to large deviations from Novikov-Thorne (NT) thin disk theory. To seek the maximum deviations, we perform general relativistic magnetohydrodynamic (GRMHD) simulations of radiatively efficient thin (half-height $H$ to radius $R$ of $H/R\approx 0.10$) disks around moderately rotating BHs with $a/M=0.5$. First, our simulations, each evolved for more than $70,000r_g/c$ (gravitational radius $r_g$ and speed of light $c$), show that large-scale magnetic field readily accretes inward even through our thin disk and builds-up to the magnetically-arrested disk (MAD) state. Second, our simulations of thin MADs show the disk achieves a radiative efficiency of $\eta_{\rm r}\approx 15\%$ (after estimating photon capture), which is about twice the NT value of $\eta_{\rm r}\sim 8\%$ for $a/M=0.5$ and gives the same luminosity as a NT disk with $a/M\approx 0.9$. Compared to prior simulations with $\lesssim 10\%$ deviations, our result of an $\approx 80\%$ deviation sets a new benchmark. Building on prior work, we are now able to complete an important scaling law which suggest that observed jet quenching in the high-soft state in BH X-ray binaries is consistent with an ever-present MAD state with a weak yet sustained jet.

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Cited by 2 Pith papers

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    astro-ph.HE 2025-05 conditional novelty 5.0 of 10

    Using a texture-memory cooling table in GRMHD, the simulations show a hot two-temperature flow at low accretion rates and a truncated thin disk above about 1% Eddington.

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