The Necessity of Feedback Physics in Setting the Peak of the Initial Mass Function
arXiv:1510.05040 · doi:10.1093/mnras/stw315
Abstract
A popular theory of star formation is gravito-turbulent fragmentation, in which self-gravitating structures are created by turbulence-driven density fluctuations. Simple theories of isothermal fragmentation successfully reproduce the core mass function (CMF) which has a very similar shape to the initial mass function (IMF) of stars. However, numerical simulations of isothermal turbulent fragmentation thus far have not succeeded in identifying a fragment mass scale that is independent of the simulation resolution. Moreover, the fluid equations for magnetized, self-gravitating, isothermal turbulence are scale-free, and do not predict any characteristic mass. In this paper we show that, although an isothermal self-gravitating flow does produce a CMF with a mass scale imposed by the initial conditions, this scale changes as the parent cloud evolves. In addition, the cores that form undergo further fragmentation and after sufficient time forget about their initial conditions, yielding a scale-free pure power-law distribution for the stellar IMF. We show that this problem can be alleviated by introducing additional physics that provides a termination scale for the cascade. Our candidate for such physics is a simple model for stellar radiation feedback. Radiative heating, powered by accretion onto forming stars, arrests the fragmentation cascade and imposes a characteristic mass scale that is nearly independent of the time-evolution or initial conditions in the star-forming cloud, and that agrees well with the peak of the observed IMF. In contrast, models that introduce a stiff equation of state for denser clouds but that do not explicitly include the effects of feedback do not yield an invariant IMF.
9 pages, 4 figures
References in corpus (17)
- A systematic variation of the stellar initial mass function in early-type galaxies
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- The Resolved Properties of Extragalactic Giant Molecular Clouds
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- Simulating the formation of molecular clouds. I. Slow formation by gravitational collapse from static initial conditions
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- The formation of molecular clouds in spiral galaxies
- Radiation Feedback and Fragmentation in Massive Protostellar Cores
- The Jeans mass and the origin of the knee in the IMF
- The statistical properties of stars and their dependence on metallicity: the effects of opacity
- On the Constancy of the Characteristic Mass of Young Stars
- Collapse in Self-gravitating Turbulent Fluids
- Metallicity and the Universality of the IMF
- Simulations of star formation in Ophiuchus, II: Multiplicity
- Star Formation in a Turbulent Framework: From Giant Molecular Clouds to Protostars
Cited by in corpus (50)
- FIRE-2 Simulations: Physics versus Numerics in Galaxy Formation
- STARFORGE: Toward a comprehensive numerical model of star cluster formation and feedback
- The Dawes Review 8: Measuring the Stellar Initial Mass Function
- Radiative Stellar Feedback in Galaxy Formation: Methods and Physics
- The Unusual Initial Mass Function of the Arches Cluster
- On the observability of individual Population III stars and their stellar-mass black hole accretion disks through cluster caustic transits
- A model for the formation of stellar associations and clusters from giant molecular clouds
- The importance of magnetic fields for the initial mass function of the first stars
- STARFORGE: The effects of protostellar outflows on the IMF
- Effects of the environment and feedback physics on the initial mass function of stars in the STARFORGE simulations
- The Stellar Initial Mass Function in Early-Type Galaxies From Absorption Line Spectroscopy. IV. A Super-Salpeter IMF in the center of NGC 1407 from Non-Parametric Models
- On The Nature of Variations in the Measured Star Formation Efficiency of Molecular Clouds
- Thermal Feedback in the high-mass star and cluster forming region W51
- Stellar mass spectrum within massive collapsing clumps II. Thermodynamics and tidal forces of the first Larson core
- Zooming in on Individual Star Formation: Low- and High-mass Stars
- Universal Scaling Relations in Scale-Free Structure Formation
- Magnetic field amplification in accretion discs around the first stars: implications for the primordial IMF
- What Physics Determines the Peak of the IMF? Insights from the Structure of Cores in Radiation-Magnetohydrodynamic Simulations
- Evolution of giant molecular clouds across cosmic time
- Ubiquitous Instabilities of Dust Moving in Magnetized Gas
- The Origin of the Stellar Mass Distribution and Multiplicity
- What is the role of stellar radiative feedback in setting the stellar mass spectrum?
- The IMF and multiplicity of stars from gravity, turbulence, magnetic fields, radiation and outflow feedback
- The effect of radiative feedback on disc fragmentation
- Isothermal Fragmentation: Is there a low-mass cut-off?
- The Resonant Drag Instability (RDI): Acoustic Modes
- Bursting Bubbles: Feedback from Clustered SNe and the Trade-off Between Turbulence and Outflows
- Can magnetized turbulence set the mass scale of stars?
- Protostellar Feedback in Turbulent Fragmentation: Consequences for Stellar Clustering and Multiplicity
- Exploring the astrophysics of dark atoms
- Analytical core mass function (CMF) from filaments: Under which circumstances can filament fragmentation reproduce the CMF?
- Is it possible to reconcile extragalactic IMF variations with a universal Milky Way IMF?
- How first hydrostatic cores, tidal forces and gravo-turbulent fluctuations set the characteristic mass of stars
- The evolution of temperature and density structures of OB cluster-forming molecular clumps
- The role of the turbulence driving mode for the Initial Mass Function
- Star Formation in a Turbulent Framework: From Giant Molecular Clouds to Protostars
- Comparing Models for IMF Variation Across Cosmological Time in Milky Way-like Galaxies
- Implementation of stellar heating feedback in simulations of star cluster formation: effects on the initial mass function
- Rogue planets and brown dwarfs: Predicting the populations of free-floating planetary mass objects observable with JWST
- Merger-driven evolution of the effective stellar initial mass function of massive early-type galaxies
- Environmental variation of the low-mass IMF
- Most Stars (and Planets?) Are Born in Intense Radiation Fields
- The impact of episodic outflow feedback on stellar multiplicity and the star formation efficiency
- The impact of carbon and oxygen abundances on the metal-poor initial mass function
- Implications of galaxy buildup for putative IMF variations in massive galaxies
- Playing with FIRE: A Galactic Feedback-Halting Experiment Challenges Star Formation Rate Theories
- The influence of the cloud virial parameter on the initial mass function
- Population III star formation in the presence of turbulence, magnetic fields and ionizing radiation feedback
- Stellar initial mass function in the 100-pc solar neighbourhood
- When did the initial mass function become bottom-heavy?