Stellar mass spectrum within massive collapsing clumps II. Thermodynamics and tidal forces of the first Larson core
arXiv:1711.00319 · doi:10.1051/0004-6361/201731523
Abstract
We investigate the dependence of the peak of the IMF on the physics of the so-called first Larson core, which corresponds to the point where the dust becomes opaque to its own radiation. We perform numerical simulations of collapsing clouds of for various gas equation of state (eos), paying great attention to the numerical resolution and convergence. The initial conditions of these numerical experiments are varied in the companion paper. We also develop analytical models that we confront to our numerical results. If an isothermal eos is used, we show that the peak of the IMF shifts to lower masses with improved numerical resolution. When an adiabatic eos is employed, numerical convergence is obtained. The peak position varies with the eos and we find that the peak position is about ten times the mass of the first Larson core. By analyzing the stability of non-linear density fluctuations in the vicinity of a point mass and then summing over a reasonable density distribution, we find that tidal forces exert a strong stabilizing effect and likely lead to a preferential mass several times larger than that of the first Larson core. We propose that in a sufficiently massive and cold cloud, the peak of the IMF is determined by the thermodynamics of the high density adiabatic gas as well as the stabilizing influence of tidal forces. The resulting characteristic mass is about ten times the mass of the first Larson core, which altogether leads to a few tenths of solar masses. Since these processes are not related to the large scale physical conditions and to the environment, our results suggest a possible explanation for the apparent universality of the peak of the IMF.
Accepted for publication in A&A
References in corpus (20)
- Analytical theory for the initial mass function: CO clumps and prestellar cores
- The Density Probability Distribution in Compressible Isothermal Turbulence: Solenoidal versus Compressive Forcing
- A High Order Godunov Scheme with Constrained Transport and Adaptive Mesh Refinement for Astrophysical MHD
- Modeling Collapse and Accretion in Turbulent Gas Clouds: Implementation and Comparison of Sink Particles in AMR and SPH
- Radiation-Hydrodynamic Simulations of Collapse and Fragmentation in Massive Protostellar Cores
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- Star Formation Around Super-Massive Black Holes
- The Fragmentation of Magnetized, Massive Star-Forming Cores with Radiative Feedback
- Starbursts triggered by inter-galactic tides and interstellar compressive turbulence
- Towards a more realistic sink particle algorithm for the RAMSES code
- Magnetohydronamic Evolution of HII Regions in Molecular Clouds: Simulation Methodology, Tests, and Uniform Media
- The Jeans mass and the origin of the knee in the IMF
- On the Constancy of the Characteristic Mass of Young Stars
- Stellar mass spectrum within massive collapsing clumps I. Influence of the initial conditions
- Bondi-Hoyle-Littleton accretion and the upper mass stellar IMF
- Prestellar Core Formation, Evolution, and Accretion from Gravitational Fragmentation in Turbulent Converging Flows
- The FRIGG project: From intermediate galactic scales to self-gravitating cores
- Analytical core mass function (CMF) from filaments: Under which circumstances can filament fragmentation reproduce the CMF?
- Tidal foces as a regulator of star formation in Taurus
- Shell instability of a collapsing dense core
Cited by in corpus (43)
- 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
- From diffuse gas to dense molecular cloud cores
- Simulating Star Clusters Across Cosmic Time: I. Initial Mass Function, Star Formation Rates and Efficiencies
- The detection and characterisation of 54 massive companions with the SOPHIE spectrograph -- 7 new brown dwarfs and constraints on the BD desert
- The Geometry and Dynamical Role of Stellar Wind Bubbles in Photoionised HII Regions
- From the CMF to the IMF: Beyond the Core-Collapse Model
- What is the role of stellar radiative feedback in setting the stellar mass spectrum?
- ALMA-IMF VI -- Investigating the origin of stellar masses: Core mass function evolution in the W43-MM2&MM3 mini-starburst
- Density profile evolution during prestellar core collapse: Collapse starts at the large scale
- Isothermal Fragmentation: Is there a low-mass cut-off?
- Can magnetized turbulence set the mass scale of stars?
- The core and stellar mass functions in massive collapsing filaments
- How first hydrostatic cores, tidal forces and gravo-turbulent fluctuations set the characteristic mass of stars
- System IMF of the 25 Ori Group from Planetary-Mass Objects to Intermediate/High-Mass Stars
- Strong dependence of the physical properties of cores on spatial resolution in observations and simulations
- Stellar mass spectrum within massive collapsing clumps III. Effects of temperature and magnetic field
- Cloud Properties and Correlations with Star Formation in Numerical Simulations of the Three-Phase ISM
- How magnetic field and stellar radiative feedback influences the collapse and the stellar mass spectrum of a massive star forming clump
- The Cosmic Microwave Background and the Stellar Initial Mass Function
- On the origin of magnetic fields in stars II: The effect of numerical resolution
- On the emergent System Mass Function: the contest between accretion and fragmentation
- On the origin of the peak of the stellar initial mass function: exploring the tidal screening theory
- Environmental variation of the low-mass IMF
- The Role of Gravity in Producing Power-Law Mass Functions
- Variation of the low-mass end of the stellar initial mass function with redshift and metallicity
- Dynamo effect in unstirred self-gravitating turbulence
- Novel Conservative Methods for Adaptive Force Softening in Collisionless and Multi-Species N-Body Simulations
- W51North: A protocluster emerging out of a thermally inhibited fragmenting cloud
- A Dual Power Law Distribution for the Stellar Initial Mass Function
- The effect of tidal forces on the Jeans instability criterion in star-forming regions
- The onset of stellar multiplicity in massive star formation: A search for low-mass companions of massive young stellar objects with -band adaptive optics imaging
- A stochastic and analytical model of hierarchical fragmentation: The fragmentation of gas structures into young stellar objects in the interstellar medium
- Star Cluster Formation in Clouds with Externally Driven Turbulence
- Prestellar Cores in Turbulent Clouds: Properties of Critical Cores
- Numerical Methods for Simulating Star Formation
- Do tides play a role in the determination of the pre-stellar core mass function?
- On the Jeans criterion for hydrostatic and infalling gas
- When did the initial mass function become bottom-heavy?
- Amplification and generation of turbulence during self-gravitating collapse
- Influence of protostellar jets and HII regions on the formation and evolution of stellar clusters
- On the coupled origin of the stellar IMF and multiplicity