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The Origin of Episodic Accretion Bursts in the Early Stages of Star Formation

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arxiv astro-ph/0510014 v1 pith:6BQ6647L submitted 2005-10-01 astro-ph

classification astro-ph
keywords accretionprotostellardiskmassprotostarburstsduringformation
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We study numerically the evolution of rotating cloud cores, from the collapse of a magnetically supercritical core to the formation of a protostar and the development of a protostellar disk during the main accretion phase. We find that the disk quickly becomes unstable to the development of a spiral structure similar to that observed recently in AB Aurigae. A continuous infall of matter from the protostellar envelope makes the protostellar disk unstable, leading to spiral arms and the formation of dense protostellar/protoplanetary clumps within them. The growing strength of spiral arms and ensuing redistribution of mass and angular momentum creates a strong centrifugal disbalance in the disk and triggers bursts of mass accretion during which the dense protostellar/protoplanetary clumps fall onto the central protostar. These episodes of clump infall may manifest themselves as episodes of vigorous accretion rate (\ge 10^{-4} M_sun/yr) as is observed in FU Orionis variables. Between these accretion bursts, the protostar is characterized by a low accretion rate (< 10^{-6} M_sun/yr). During the phase of episodic accretion, the mass of the protostellar disk remains less than or comparable to the mass of the protostar.

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Cited by 2 Pith papers

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  1. Hot water emission during an outburst on a classical T Tauri star

    astro-ph.SR 2026-08 conditional novelty 7.0 of 10

    V557 Mon, a classical T Tauri star, underwent a year-long EXor outburst during which transient hot water vapor emission traced an inner disk cooling from about 3000 K to 2000 K.

  2. IPA: Morphology and Kinematics of Molecular Hydrogen Winds in Five Young Protostars across the Mass Spectrum Observed with JWST

    astro-ph.SR 2026-08 conditional novelty 6.0 of 10

    Five protostars from 0.16 to 10,000 solar luminosities show nested, onion-like H2 outflows, with higher-excitation gas more collimated and faster, consistent with MHD disk wind launching.

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