The Burst Mode of Protostellar Accretion
arXiv:astro-ph/0607118 · doi:10.1086/507320
Abstract
We present new numerical simulations in the thin-disk approximation which characterize the burst mode of protostellar accretion. The burst mode begins upon the formation of a centrifugally balanced disk around a newly formed protostar. It is comprised of prolonged quiescent periods of low accretion rate (typically $\la 10^{-7} \Msun$ yr) which are punctuated by intense bursts of accretion (typically $\ga 10^{-4} \Msun$ yr, with duration $\la 100$ yr) during which most of the protostellar mass is accumulated. The accretion bursts are associated with the formation of dense protostellar/protoplanetary embryos, which are later driven onto the protostar by the gravitational torques that develop in the disk. Gravitational instability in the disk, driven by continuing infall from the envelope, is shown to be an effective means of transporting angular momentum outward, and mass inward to the protostar. We show that the disk mass always remains significantly less than the central protostar mass throughout this process. The burst phenomenon is robust enough to occur for a variety of initial values of rotation rate, frozen-in (supercritical) magnetic field, and density-temperature relations. Even in cases where the bursts are nearly entirely suppressed, a moderate increase in cloud size or rotation rate can lead to vigorous burst activity. We conclude that most (if not all) protostars undergo a burst mode of evolution during their early accretion history, as inferred empirically from observations of FU Orionis variables.
39 pages, 14 figures, aastex; will appear in ApJ 20 Oct 2006; version with higher resolution figures available at http://www.astro.uwo.ca/~basu/pb.htm
Cited by in corpus (18)
- Theory of Star Formation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- Identifying the Low Luminosity Population of Embedded Protostars in the c2d Observations of Clouds and Cores
- Global Models for the Evolution of Embedded, Accreting Protostellar Disks
- The Hot Inner Disk of FU Ori
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- Secular evolution of viscous and self-gravitating circumstellar discs
- Mean-Field Magnetohydrodynamics of Accretion Disks
- Evolution of dust and ice features around FU Orionis objects
- The Thermal Regulation of Gravitational Instabilities in Protoplanetary Disks. IV. Simulations with Envelope Irradiation
- Self-regulated gravitational accretion in protostellar discs
- Mass accretion rates in self-regulated disks of T Tauri stars
- Encounter-driven accretion in young stellar clusters - A connection to FUors?
- High-resolution polarimetry of Parsamian 21: revealing the structure of an edge-on FU Ori disc
- Boltzmann moment equation approach for the numerical study of anisotropic stellar disks
- Insights from Simulations of Star Formation
- The applicability of the viscous α-parameterization of gravitational instability in circumstellar disks
- Herbig-Haro Objects - Tracers of the Formation of Low-mass Stars and Sub-stellar Objects