Spin down of protostars through gravitational torques
arXiv:1105.3205 · doi:10.1111/j.1365-2966.2011.19074.x
Abstract
Young protostars embedded in circumstellar discs accrete from an angular momentum-rich mass reservoir. Without some braking mechanism, all stars should be spinning at or near break-up velocity. In this paper, we perform simulations of the self-gravitational collapse of an isothermal cloud using the ORION adaptive mesh refinement code and investigate the role that gravitational torques might play in the spin-down of the dense central object. While magnetic effects likely dominate for low mass stars, high mass and Population III stars might be less well magnetised. We find that gravitational torques alone prevent the central object from spinning up to more than half of its breakup velocity, because higher rotation rates lead to bar-like deformations that enable efficient angular momentum transfer to the surrounding medium. We also find that the long-term spin evolution of the central object is dictated by the properties of the surrounding disc. In particular, spiral modes with azimuthal wavenumber couple more effectively to its spin than the lopsided mode, which was found to inhibit spin evolution. We suggest that even in the absence of magnetic fields, gravitational torques may provide an upper limit on stellar spin, and that moderately massive circumstellar discs can cause long-term spin down.
13 pages, 17 figures, 1 table. Accepted by MNRAS. Updated references
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- On the Role of the Limit in the Formation of Population III Massive Stars
- Exploring the stellar rotation of early-type stars in the LAMOST Medium-Resolution Survey. II. Statistics
- Large Scale Dynamo in a Primordial Accretion Flow -- An Interpretation from Hydrodynamic Simulation
- The angular momentum of stars reflects the relationship between star-forming environment and galactic evolution history