Do siblings always form and evolve simultaneously? Testing the coevality of multiple protostellar systems through SEDs
arXiv:1604.06123 · doi:10.1051/0004-6361/201628247
Abstract
Multiplicity is common in field stars and among protostellar systems. Models suggest two paths of formation: turbulent fragmentation and protostellar disk fragmentation. We attempt to find whether or not the coevality frequency of multiple protostellar systems can help to better understand their formation mechanism. The coevality frequency is determined by constraining the relative evolutionary stages of the components in a multiple system. SEDs for known multiple protostars in Perseus were constructed from literature data. Herschel PACS photometric maps were used to sample the peak of the SED for systems with separations >7", a crucial aspect in determining the evolutionary stage of a protostellar system. Inclination effects and the surrounding envelope and outflows were considered to decouple source geometry from evolution. This together with the shape and derived properties from the SED was used to determine each system's coevality as accurately as possible. SED models were used to examine the frequency of non-coevality that is due to geometry. We find a non-coevality frequency of 33+/-10% from the comparison of SED shapes of resolved multiple systems. Other source parameters suggest a somewhat lower frequency of non-coevality. The frequency of apparent non-coevality that is due to random inclination angle pairings of model SEDs is 17+/-0.5%. Observations of the outflow of resolved multiple systems do not suggest significant misalignments within multiple systems. Effects of unresolved multiples on the SED shape are also investigated. We find that 1/3 of the multiple protostellar systems sampled here are non-coeval, which is more than expected from random geometric orientations. The other 2/3 are found to be coeval. Higher order multiples show a tendency to be non-coeval. The frequency of non-coevality found here is most likely due to formation and enhanced by dynamical evolution.
Accepted for publication in Astronomy & Astrophysics, 24 pages with appendices, 9 figures and 10 tables
References in corpus (18)
- The properties of brown dwarfs and low-mass hydrogen-burning stars formed by disc fragmentation
- The Evolution of Outflow-Envelope Interactions in Low-Mass Protostars
- Identifying the Low Luminosity Population of Embedded Protostars in the c2d Observations of Clouds and Cores
- The VLA Nascent Disk and Multiplicity Survey of Perseus Protostars (VANDAM). II. Multiplicity of Protostars in the Perseus Molecular Cloud
- Unexpectedly large mass loss during the thermal pulse cycle of the red giant R Sculptoris!
- Characterizing the nature of embedded young stellar objects through silicate, ice and millimeter observations
- APEX-CHAMP+ high-J CO observations of low-mass young stellar objects: IV. Mechanical and radiative feedback
- ALMA data suggest the presence of a spiral structure in the inner wind of CW Leo
- Misalignment of Outflow Axes in the Proto-Multiple Systems in Perseus
- Observations of Infalling and Rotational Motions on a 1,000-AU Scale around 17 Class 0 and 0/I Protostars: Hints of Disk Growth and Magnetic Braking?
- IC348-SMM2E: a Class 0 proto-brown dwarf candidate forming as a scaled-down version of low-mass stars
- Nascent bipolar outflows associated with the first hydrostatic core candidates Barnard 1b-N and 1b-S
- The VLA Nascent Disk And Multiplicity (VANDAM) Survey of Perseus Protostars. Resolving the Sub-Arcsecond Binary System in NGC 1333 IRAS2A
- Mass Assembly of Stellar Systems and Their Evolution with the SMA (MASSES). Multiplicity and the Physical Environment in L1448N
- Two Extreme Young Objects in Barnard 1-b
- Star formation in the vicinity of the IC 348 cluster
- Outflow - Core Interaction in Barnard 1
- Properties of the Molecular Cores of Low Luminosity Objects
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- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars. A Statistical Characterization of Class 0 and I Protostellar Disks
- A Triple Protostar System Formed via Fragmentation of a Gravitationally Unstable Disk
- The VLA Nascent Disk And Multiplicity Survey of Perseus Protostars (VANDAM). IV. Free-Free Emission from Protostars: Links to Infrared Properties, Outflow Tracers, and Protostellar Disk Masses
- The Perseus ALMA Chemistry Survey (PEACHES). I. The Complex Organic Molecules in Perseus Embedded Protostars
- The Herschel-PACS legacy of low-mass protostars: Properties of warm and hot gas and its origin in far-UV illuminated shocks
- Chronology of Episodic Accretion in Protostars -- an ALMA survey of the CO and HO snowlines
- The VLA/ALMA Nascent Disk and Multiplicity (VANDAM) Survey of Orion Protostars V. A Characterization of Protostellar Multiplicity
- Embedded Binaries and Their Dense Cores
- Tracing the cold and warm physico-chemical structure of deeply embedded protostars: IRAS 16293-2422 versus VLA 1623-2417
- A cold accretion flow onto one component of a multiple protostellar system
- Probing Episodic Accretion in Very Low Luminosity Objects
- Chemistry of a newly detected circumbinary disk in Ophiuchus
- The contribution of binary star formation via core-fragmentation on protostellar multiplicity
- The Perseus ALMA Chemical Survey (PEACHES). III. Sulfur-bearing species tracing accretion and ejection processes in young protostars
- Importance of source structure on complex organics emission. I. Observations of CHOH from low-mass to high-mass protostars
- The Near Stellar Environment of Class 0 Protostars: A First Look with Near-Infrared Spectroscopy
- Revised SED of the triple protostellar system VLA 1623-2417
- Role of environment and gas temperature in the formation of multiple protostellar systems: molecular tracers
- Modeling snowline locations in protostars: The impact of the structure of protostellar cloud cores
- 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
- The factors that influence protostellar multiplicity I: Gas temperature, density, and mass in Perseus with Nobeyama
- The factors that influence protostellar multiplicity II. Gas temperature and mass in Perseus with APEX
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