Towards a more realistic sink particle algorithm for the RAMSES code
arXiv:1409.6528 · doi:10.1093/mnras/stu2005
Abstract
We present a new sink particle algorithm developed for the Adaptive Mesh Refinement code RAMSES. Our main addition is the use of a clump finder to identify density peaks and their associated regions (the peak patches). This allows us to unambiguously define a discrete set of dense molecular cores as potential sites for sink particle formation. Furthermore, we develop a new scheme to decide if the gas in which a sink could potentially form, is indeed gravitationally bound and rapidly collapsing. This is achieved using a general integral form of the virial theorem, where we use the curvature in the gravitational potential to correctly account for the background potential. We detail all the necessary steps to follow the evolution of sink particles in turbulent molecular cloud simulations, such as sink production, their trajectory integration, sink merging and finally the gas accretion rate onto an existing sink. We compare our new recipe for sink formation to other popular implementations. Statistical properties such as the sink mass function, the average sink mass and the sink multiplicity function are used to evaluate the impact that our new scheme has on accurately predicting fundamental quantities such as the stellar initial mass function or the stellar multiplicity function.
submitted to MNRAS, 24 pages, 19 figures, 5 tables
References in corpus (6)
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- The Effects of Radiative Transfer on Low-Mass Star Formation
- Cooling, Gravity and Geometry: Flow-driven Massive Core Formation
- A simple multigrid scheme for solving the Poisson equation with arbitrary domain boundaries
- Protostellar collapse: A comparison between SPH and AMR calculations
Cited by in corpus (7)
- Black hole feeding and feedback: the physics inside the "subgrid"
- A simple method to convert sink particles into stars
- Modeling UV Radiation Feedback from Massive Stars: I. Implementation of Adaptive Ray Tracing Method and Tests
- The combined effect of AGN and supernovae feedback in launching massive molecular outflows in high-redshift galaxies
- How AGN and SNe feedback affect mass transport and black hole growth in high redshift galaxies
- Magnetically-regulated fragmentation of a massive, dense and turbulent clump
- The Effects of Protostellar Jet Feedback on Turbulent Collapse