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    The highly variable time evolution of star-forming cores identified with dendrograms

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    Author
    Smullen, Rachel A
    Kratter, Kaitlin M
    Offner, Stella S R
    Lee, Aaron T
    Chen, Hope How-Huan
    Affiliation
    Univ Arizona, Steward Observ
    Issue Date
    2020-08-06
    Keywords
    stars: formation
    ISM: clouds
    
    Metadata
    Show full item record
    Publisher
    OXFORD UNIV PRESS
    Citation
    Smullen, R. A., Kratter, K. M., Offner, S. S., Lee, A. T., & Chen, H. H. H. (2020). The highly variable time evolution of star-forming cores identified with dendrograms. Monthly Notices of the Royal Astronomical Society, 497(4), 4517-4534.
    Journal
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY
    Rights
    © 2020 The Author(s). Published by Oxford University Press on behalf of the Royal Astronomical Society.
    Collection Information
    This item from the UA Faculty Publications collection is made available by the University of Arizona with support from the University of Arizona Libraries. If you have questions, please contact us at repository@u.library.arizona.edu.
    Abstract
    We investigate the time evolution of dense cores identified in molecular cloud simulations using dendrograms, which are a common tool to identify hierarchical structure in simulations and observations of star formation. We develop an algorithm to link dendrogram structures through time using the three-dimensional density field from magnetohydrodynamical simulations, thus creating histories for all dense cores in the domain. We find that the population-wide distributions of core properties are relatively invariant in time, and quantities like the core mass function match with observations. Despite this consistency, an individual core may undergo large (>40 per cent), stochastic variations due to the redefinition of the dendrogram structure between time-steps. This variation occurs independent of environment and stellar content. We identify a population of short-lived (<200 kyr) overdensities masquerading as dense cores that may comprise similar to 20 per cent of any time snapshot. Finally, we note the importance of considering the full history of cores when interpreting the origin of the initial mass function; we find that, especially for systems containing multiple stars, the core mass defined by a dendrogram leaf in a snapshot is typically less than the final system stellar mass. This work reinforces that there is no time-stable density contour that defines a star-forming core. The dendrogram itself can induce significant structure variation between time-steps due to small changes in the density field. Thus, one must use caution when comparing dendrograms of regions with different ages or environment properties because differences in dendrogram structure may not come solely from the physical evolution of dense cores.
    ISSN
    0035-8711
    EISSN
    1365-2966
    DOI
    10.1093/mnras/staa2253
    Version
    Final published version
    Sponsors
    National Science Foundation
    ae974a485f413a2113503eed53cd6c53
    10.1093/mnras/staa2253
    Scopus Count
    Collections
    UA Faculty Publications

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