The Effects of Magnetic Fields and Protostellar Feedback on Low-mass Cluster Formation
arXiv:1709.01277 · doi:10.1093/mnras/sty154
Abstract
We present a large suite of simulations of the formation of low-mass star clusters. Our simulations include an extensive set of physical processes -- magnetohydrodynamics, radiative transfer, and protostellar outflows -- and span a wide range of virial parameters and magnetic field strengths. Comparing the outcomes of our simulations to observations, we find that simulations remaining close to virial balance throughout their history produce star formation efficiencies and initial mass function (IMF) peaks that are stable in time and in reasonable agreement with observations. Our results indicate that small-scale dissipation effects near the protostellar surface provide a feedback loop for stabilizing the star formation efficiency. This is true regardless of whether the balance is maintained by input of energy from large scale forcing or by strong magnetic fields that inhibit collapse. In contrast, simulations that leave virial balance and undergo runaway collapse form stars too efficiently and produce an IMF that becomes increasingly top-heavy with time. In all cases we find that the competition between magnetic flux advection toward the protostar and outward advection due to magnetic interchange instabilities, and the competition between turbulent amplification and reconnection close to newly-formed protostars renders the local magnetic field structure insensitive to the strength of the large-scale field, ensuring that radiation is always more important than magnetic support in setting the fragmentation scale and thus the IMF peak mass. The statistics of multiple stellar systems are similarly insensitive to variations in the initial conditions and generally agree with observations within the range of statistical uncertainty.
Accepted to MNRAS. Article in press
References in corpus (22)
- Theory of Star Formation
- Slow Star Formation in Dense Gas: Evidence and Implications
- The High Angular Resolution Multiplicity of Massive Stars
- A Minimum Column Density of 1 g cm^-2 for Massive Star Formation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- A new Jeans resolution criterion for (M)HD simulations of self-gravitating gas: Application to magnetic field amplification by gravity-driven turbulence
- Inefficient star formation through turbulence, magnetic fields and feedback
- The Fractal Density Structure in Supersonic Isothermal Turbulence: Solenoidal versus Compressive Energy Injection
- The Global Evolution of Giant Molecular Clouds. I: Model Formulation and Quasi-Equilibrium Behavior
- The Fragmentation of Magnetized, Massive Star-Forming Cores with Radiative Feedback
- The effect of magnetic fields on star cluster formation
- Equations and Algorithms for Mixed Frame Flux-Limited Diffusion Radiation Hydrodynamics
- Observational Evidence of Dynamic Star Formation Rate in Milky Way Giant Molecular Clouds
- An Unstable Truth: How Massive Stars get their Mass
- A Survey for Spectroscopic Binaries Among Very Low-Mass Stars
- Can Protostellar Jets Drive Supersonic Turbulence in Molecular Clouds?
- The Formation of Stellar Clusters in Magnetized, Filamentary Infrared Dark Clouds
- Metallicity and the Universality of the IMF
- Hybrid Adaptive Ray-Moment Method (HARM): A Highly Parallel Method for Radiation Hydrodynamics on Adaptive Grids
- The impact of non-ideal magnetohydrodynamics on binary star formation
- On the time variability of the star formation efficiency
- Collective outflow from a small multiple stellar system
Cited by in corpus (59)
- Star Clusters Across Cosmic Time
- STARFORGE: Toward a comprehensive numerical model of star cluster formation and feedback
- The dynamics and outcome of star formation with jets, radiation, winds, and supernovae in concert
- Star Formation Efficiency and Dispersal of Giant Molecular Clouds with UV Radiation Feedback: Dependence on Gravitational Boundedness and Magnetic Fields
- Transition of the initial mass function in the metal-poor environments
- The statistical properties of stars and their dependence on metallicity
- The Unusual Initial Mass Function of the Arches Cluster
- The CARMA-NRO Orion Survey
- The importance of magnetic fields for the initial mass function of the first stars
- STARFORGE: The effects of protostellar outflows on the IMF
- There is no magnetic braking catastrophe: Low-mass star cluster and protostellar disc formation with non-ideal magnetohydrodynamics
- Effects of the environment and feedback physics on the initial mass function of stars in the STARFORGE simulations
- The Formation and Evolution of Wide-Orbit Stellar Multiples In Magnetized Clouds
- The Bridge: a transient phenomenon of forming stellar multiples
- On The Nature of Variations in the Measured Star Formation Efficiency of Molecular Clouds
- Does the magnetic field suppress fragmentation in massive dense cores?
- Simulating Star Clusters Across Cosmic Time: I. Initial Mass Function, Star Formation Rates and Efficiencies
- Zooming in on Individual Star Formation: Low- and High-mass Stars
- Cluster assembly and the origin of mass segregation in the STARFORGE simulations
- An initial overview of the extent and structure of recent star formation within the Serpens Molecular Cloud using Gaia Data Release 2
- The Single-Cloud Star Formation Relation
- Magnetic field amplification in accretion discs around the first stars: implications for the primordial IMF
- The Origin of the Stellar Mass Distribution and Multiplicity
- The IMF and multiplicity of stars from gravity, turbulence, magnetic fields, radiation and outflow feedback
- Slow Star Formation in the Milky Way: Theory Meets Observations
- High Mass-ratio Binary Population in Open Clusters: Segregation of early type binaries and an increasing binary fraction with mass
- Mixing of metals during star cluster formation: statistics and implications for chemical tagging
- Can magnetized turbulence set the mass scale of stars?
- KFPA Examinations of Young STellar Object Natal Environments (KEYSTONE): Hierarchical Ammonia Structures in Galactic Giant Molecular Clouds
- The density structure of supersonic self-gravitating turbulence
- Effects of the environment on the multiplicity properties of stars in the STARFORGE simulations
- The Simons Observatory: Galactic Science Goals and Forecasts
- The role of the turbulence driving mode for the Initial Mass Function
- Less wrong: a more realistic initial condition for simulations of turbulent molecular clouds
- The highly variable time evolution of star-forming cores identified with dendrograms
- A Census of Star Formation in the Outer Galaxy II: The GLIMPSE360 Field
- On the origin of magnetic fields in stars II: The effect of numerical resolution
- Implementation of stellar heating feedback in simulations of star cluster formation: effects on the initial mass function
- The role of turbulence during the formation of circumbinary discs
- The statistical properties of stars at redshift, z=5, compared with the present epoch
- Environmental variation of the low-mass IMF
- Determining Star Formation Thresholds from Observations
- Variation of the low-mass end of the stellar initial mass function with redshift and metallicity
- The statistical properties of protostellar discs and their dependence on metallicity
- The impact of episodic outflow feedback on stellar multiplicity and the star formation efficiency
- A Census of Outflow to Magnetic Field Orientations in Nearby Molecular Clouds
- Modeling Star Formation as a Markov Process in a Supersonic Gravoturbulent Medium
- A Census of Protostellar Outflows in Nearby Molecular Clouds
- Reconstructing three-dimensional densities from two-dimensional observations of molecular gas
- The influence of the cloud virial parameter on the initial mass function
- Accelerating self-gravitating hydrodynamics simulations with adaptive force updates
- Bimodal Star Formation in Simulations of Strongly Magnetized Giant Molecular Clouds
- Robustness of Synthetic Observations in Producing Observed Core Properties: Predictions for the TolTEC Clouds to Cores Legacy Survey
- The High-resolution Accretion Disks of Embedded protoStars (HADES) simulations. I. Impact of Protostellar Magnetic Fields on the Accretion Modes
- The factors that influence protostellar multiplicity I: Gas temperature, density, and mass in Perseus with Nobeyama
- Can Protostellar Outflows Set Stellar Masses?
- When did the initial mass function become bottom-heavy?
- Star formation in cloud cores -- simulations and observations of dense molecular cores and the formation of solar mass stars
- Influence of protostellar jets and HII regions on the formation and evolution of stellar clusters