The Earliest Stages of Star and Planet Formation: Core Collapse, and the Formation of Disks and Outflows
arXiv:1401.2219 · doi:10.2458/azu_uapress_9780816531240-ch008
Abstract
(Abridged) In this review we focus on the observations and theory of the formation of early disks and outflows, and their connections with the first phases of planet formation. Large rotationally supported circumstellar disks, although common around more evolved young stellar objects, are rarely detected during the earliest, "Class 0" phase; however, a few excellent candidates have been discovered recently around both low and high mass protostars. In this early phase, prominent outflows are ubiquitously observed; they are expected to be associated with at least small magnetized disks. Disk formation - once thought to be a simple consequence of the conservation of angular momentum during hydrodynamic core collapse - is far more subtle in magnetized gas. In this case, the rotation can be strongly magnetically braked. Indeed, both analytic arguments and numerical simulations have shown that disk formation is suppressed in the strict ideal magnetohydrodynamic (MHD) limit for the observed level of core magnetization. We review what is known about this "magnetic braking catastrophe", possible ways to resolve it, and the current status of early disk observations. Outflows are also intimately linked to disk formation; they are a natural product of magnetic fields and rotation and are important signposts of star formation. We review new developments on early outflow generation since PPV. The properties of early disks and outflows are a key component of planet formation in its early stages and we review these major connections.
Accepted for publication as a chapter in Protostars and Planets VI, University of Arizona Press (2014), eds. H. Beuther, R. Klessen, C. Dullemond, Th. Henning
Cited by in corpus (11)
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars. A Statistical Characterization of Class 0 and I Protostellar Disks
- Protostellar collapse simulations in spherical geometry with dust coagulation and fragmentation
- Herbig Stars: A Quarter Century of Progress
- The Class 0 Protostar BHR71: Herschel Observations and Dust Continuum Models
- Rotating filament in Orion B: Do cores inherit their angular momentum from their parent filament?
- HAWC+/SOFIA Polarimetry in L1688: Relative Orientation of Magnetic Field and Elongated Cloud Structure
- Relative Alignment between Dense Molecular Cores and Ambient Magnetic Field: The Synergy of Numerical Models and Observations
- A 16 au Binary in the Class 0 Protostar L1157 MMS
- Physicochemical models: source-tailored or generic?
- Hypothesis about Enrichment of Solar System
- Modelling the Break in the Specific Angular Momentum within the Envelope-Disk Transition Zone