Protostellar Angular Momentum Evolution during Gravoturbulent Fragmentation
arXiv:astro-ph/0402361 · doi:10.1051/0004-6361:20040220
Abstract
Using hydrodynamic simulations we investigate the rotational properties and angular momentum evolution of prestellar and protostellar cores formed from gravoturbulent fragmentation of interstellar gas clouds. We find the specific angular momentum j of prestellar cloud cores in our models to be on average comparable to the observed values. A fraction of prestellar cores is gravitationally unstable and goes into collapse to build up protostars and protostellar systems. Their specific angular momentum is one order of magnitude lower than their parental cores and in agreement with observations of main-sequence binaries. The ratio of rotational to gravitational energy of protostellar cores in the model turns out to be very similar to the observed values. We find, that it is roughly conserved during the main collapse phase. This leads to j proportional to M^{2/3}, where j is specific angular momentum and M core mass. Although the temporal evolution of the angular momentum of individual protostars or protostellar systems is complex and highly time variable, this correlation holds well in a statistical sense for a wide range of turbulent environmental parameters. In addition, high turbulent Mach numbers result in the formation of more numerous protostellar cores with, on average, lower mass. Therefore, models with larger Mach numbers result in cores with lower specific angular momentum. We find, however, no dependence on the spatial scale of the turbulence. Our models predict a close correlation between the angular momentum vectors of neighboring protostars during their main accretion phase. Possible observational signatures are aligned disks and parallel outflows. The latter are indeed observed in some low-mass isolated Bok globules.
Accepted for publication in A&A, 11 pages with 8 figures
References in corpus (9)
- Control of star formation by supersonic turbulence
- The Physics of Star Formation
- A Holistic Scenario of Turbulent Molecular Cloud Evolution and Control of the Star Formation Efficiency. First Tests
- The Formation of Self-Gravitating Cores in Turbulent Magnetized Clouds
- Dynamic cores in hydrostatic disguise
- Analysis of Clumps in Molecular Cloud Models: Mass Spectrum, Shapes, Alignment and Rotation
- N2H+(1-0) survey of massive molecular cloud cores
- A Turbulent Interstellar Medium Origin of the Binary Period Distribution
- Young Stars and Outflows in the globule IC1396W
Cited by in corpus (39)
- Theory of Star Formation
- Cold Dark Clouds: The Initial Conditions for Star Formation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The stellar mass spectrum from non-isothermal gravoturbulent fragmentation
- Limiting Accretion onto Massive Stars by Fragmentation-Induced Starvation
- Modeling jet and outflow feedback during star cluster formation
- Partially Ionized Plasmas in Astrophysics
- The James Clerk Maxwell Telescope Legacy Survey of Nearby Star-forming Regions in the Gould Belt
- Quiescent and coherent cores from gravoturbulent fragmentation
- Rotation Speed of the First Stars
- Driven and Decaying Turbulence Simulations of Low-Mass Star Formation: From Clumps to Cores to Protostars
- Early stages of cluster formation: fragmentation of massive dense cores down to ~1000 AU
- The Role of Magnetic Fields in Protostellar Outflows and Star Formation
- Cloudlet capture by Transitional Disk and FU Orionis stars
- The Angular Momentum of Magnetized Molecular Cloud Cores: A 2D-3D Comparison
- Resolution requirements for simulating gravitational fragmentation using SPH
- Fragmentation and Evolution of Molecular Clouds. I: Algorithm and First Results
- The Formation of Star Clusters II: 3D Simulations of Magnetohydrodynamic Turbulence in Molecular Clouds
- Mass Assembly of Stellar Systems and Their Evolution with the SMA (MASSES). Multiplicity and the Physical Environment in L1448N
- Simulating hydromagnetic processes in star formation: introducing ambipolar diffusion into an adaptive mesh refinement code
- A quantification of the non-spherical geometry and accretion of collapsing cores
- The IMF and multiplicity of stars from gravity, turbulence, magnetic fields, radiation and outflow feedback
- 3D Continuum radiative transfer in complex dust configurations around young stellar objects and active nuclei II. 3D Structure of the dense molecular cloud core Rho Oph D
- The specific angular momentum radial profile in dense cores: improved initial conditions for disk formation
- Shock interactions, turbulence, and the origin of the stellar mass spectrum
- Collective outflow from a small multiple stellar system
- Angular Momentum and the Formation of Stars and Black Holes
- Evolution of Class0 protostars: Models vs. Observations
- The role of the turbulence driving mode for the Initial Mass Function
- Massive star formation by accretion II. Rotation: how to circumvent the angular momentum barrier?
- Rotating filament in Orion B: Do cores inherit their angular momentum from their parent filament?
- A submillimetre survey of the kinematics of the Perseus molecular cloud - III. Clump kinematics
- On the magnetic flux problem in star formation
- Evolution of the angular momentum during gravitational fragmentation of molecular clouds
- Necessary conditions for the formation of filaments and star clusters in the cold neutral medium
- Number ratios of young stellar objects in embedded clusters
- Spin down of protostars through gravitational torques
- Population III star formation in the presence of turbulence, magnetic fields and ionizing radiation feedback
- Angular momentum distribution during the collapse of primordial star-forming clouds