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Unstable Disk Accretion to Magnetized Stars: First Global 3D MHD Simulations

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arxiv 0711.0418 v2 pith:S6ODQQON submitted 2007-11-03 astro-ph

classification astro-ph
keywords accretionstarregimelight-curvesmatterorderedsimulationsstable
verification ladder T0 review T1 audit T2 compute T3 formal
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We report on the first global three-dimensional (3D) MHD simulations of disk accretion onto a rotating magnetized star through the Rayleigh-Taylor instability. The star has a dipole field misaligned relative to the rotation axis by a small angle Theta. Simulations show that, depending on the accretion rate, a star may be in the stable or unstable regime of accretion. In the unstable regime, matter penetrates deep into the magnetosphere through several elongated "tongues" which deposit matter at random places on the surface of the star, leading to stochastic light-curves. In the stable regime, matter accretes in ordered funnel streams and the light-curves are almost periodic. A star may switch between these two regimes depending on the accretion rate and may thus show alternate episodes of ordered pulsations and stochastic light-curves. In the intermediate regime, both stochastic and ordered pulsations are observed. For Theta > 30 degrees, the instability is suppressed and stable accretion through funnel streams dominates.

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Cited by 2 Pith papers

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    astro-ph.HE 2025-02 conditional novelty 5.0 of 10

    A systematic Z1^2 and maximum-likelihood search of RXTE data finds dozens of intermittent pulse candidates in three accreting millisecond pulsars and derives an 8.76 h orbital period for SAX J1748.9-2021.

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