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Zooming in on Individual Star Formation: Low- and High-mass Stars

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arxiv 2005.07717 v1 pith:LBZBSB3R submitted 2020-05-15 astro-ph.SR astro-ph.GA

classification astro-ph.SRastro-ph.GA
keywords formationstarscalessizedifferentmulti-physicsobservationalobservations
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abstract

Star formation is a multi-scale, multi-physics problem ranging from the size scale of molecular clouds ($\sim$10s pc) down to the size scales of dense prestellar cores ($\sim$0.1 pc) that are the birth sites of stars. Several physical processes like turbulence, magnetic fields and stellar feedback, such as radiation pressure and outflows, are more or less important for different stellar masses and size scales. During the last decade a variety of technological and computing advances have transformed our understanding of star formation through the use of multi-wavelength observations, large scale observational surveys, and multi-physics multi-dimensional numerical simulations. Additionally, the use of synthetic observations of simulations have provided a useful tool to interpret observational data and evaluate the importance of various physical processes on different scales in star formation. Here, we review these recent advancements in both high- ($M \gtrsim 8 \, M_{\rm \odot}$) and low-mass star formation.

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Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Hub-filament systems and the growth of massive stars: episodic accretion, clustered environments, and projection effects

    astro-ph.GA 2026-08 conditional novelty 6.0 of 10

    In a 3D MHD star-formation simulation, future massive stars gain about 40% of their mass in short enhanced-accretion episodes occurring preferentially near 3D hub-filament junctions, but only 27-49% of those junctions...

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