Formation of multiple low mass stars, brown dwarfs and planemos via gravitational collapse
arXiv:1805.09881 · doi:10.1093/mnras/sty1409
Abstract
The origin of very low-mass stars (VLMS) and brown dwarfs (BDs) is still an unresolved topic of star formation. We here present numerical simulations of the formation of VLMS, BDs, and planet mass objects (planemos) resulting from the gravitational collapse and fragmentation of solar mass molecular cores with varying rotation rates and initial density perturbations. Our simulations yield various types of binary systems including the combinations VLMS-VLMS, BD-BD, planemo-planemo, VLMS-BD, VLMS-planemos, BD-planemo. Our scheme successfully addresses the formation of wide VLMS and BD binaries with semi-major axis up to 441 AU and produces a spectrum of mass ratios closer to the observed mass ratio distribution (q > 0.5). Molecular cores with moderate values of the ratio of kinetic to gravitational potential energy (0.16 <= beta <= 0.21) produce planemos. Solar mass cores with rotational parameters beta outside of this range yield either VLMS/BDs or a combination of both. With regard to the mass ratios we find that for both types of binary systems the mass ratio distribution varies in the range 0.31 <= q <= 0.74. We note that in the presence of radiative feedback, the length scale of fragmentation would increase by approximately two orders of magnitude, implying that the formation of binaries may be efficient for wide orbits, while being suppressed for short-orbit systems.
14 pages, 5 figures, 5 tables, accepted at MNRAS. Comments welcome
References in corpus (17)
- SPLASH: An interactive visualisation tool for Smoothed Particle Hydrodynamics simulations
- Smoothed Particle Hydrodynamics and Magnetohydrodynamics
- The properties of brown dwarfs and low-mass hydrogen-burning stars formed by disc fragmentation
- The Effects of Radiative Transfer on Low-Mass Star Formation
- The Importance of Radiative Feedback for the Stellar Initial Mass Function
- Brown dwarf formation by gravitational fragmentation of massive, extended protostellar discs
- Modeling jet and outflow feedback during star cluster formation
- The Wide Brown Dwarf Binary Oph 1622-2405 and Discovery of A Wide, Low Mass Binary in Ophiuchus (Oph 1623-2402): A New Class of Young Evaporating Wide Binaries?
- The statistical properties of stars and their dependence on metallicity: the effects of opacity
- Discovery of a wide companion near the deuterium burning mass limit in the Upper Scorpius association
- First Confirmed Detection of a Bipolar Molecular Outflow from a Young Brown Dwarf
- Testing Disk Instability Models for Giant Planet Formation
- Substellar Objects in Nearby Young Clusters (SONYC) VI: The planetary-mass domain of NGC1333
- Long period planets from dynamical relaxation
- Brown dwarf formation by binary disruption
- A discontinuity in the low-mass IMF - the case of high multiplicity
- On the thermal sensitivity of binary formation in collapsing molecular clouds
Cited by in corpus (8)
- Disk Masses and Dust Evolution of Protoplanetary Disks Around Brown Dwarfs
- Ultracool dwarfs in Gaia DR3
- Modeling the Protoplanetary Disks of Two Brown Dwarfs in the Taurus Molecular Cloud
- Study of the Mass-Ratio Distribution of Spectroscopic Binaries. II. The Boundaries of the Brown-Dwarf Desert as Seen with the APOGEE Spectroscopic Binaries
- Search for Brown Dwarfs in IC 1396 with Subaru HSC: Interpreting the Impact of Environmental Factors on Sub-stellar Population
- Do fragmentation and accretion affect the stellar Initial Mass Function?
- Detection and characterisation of two VLM binaries: LP 1033-31 and LP 877-72
- Interstellar objects follow the collapse of molecular clouds