A graph theory-based multi-scale analysis of hierarchical cascade in molecular clouds : Application to the NGC 2264 region
B. Thomasson, I. Joncour, E. Moraux, C. Crespelle, F. Motte, Y., Pouteau, T. Nony

TL;DR
This study uses graph theory to analyze the multi-scale hierarchical structure of molecular clouds in NGC 2264, linking the cascade process to star formation efficiency and revealing a scale-dependent hierarchy in gas clumps.
Contribution
It introduces a novel graph-theoretic framework and a fractality coefficient to characterize the hierarchical cascade in molecular clouds and its relation to star formation.
Findings
Hierarchical structures dominate high-density regions with efficient star formation.
A fractality coefficient of 1.45 indicates scale-free cascade behavior.
Hierarchical cascade begins at a characteristic scale of 13 kAU.
Abstract
The spatial properties of small star-clusters suggest that they may originate from a fragmentation cascade of the cloud for which there might be traces up to a few dozen of kAU. Our goal is to investigate the multi-scale spatial structure of gas clumps, to probe the existence of a hierarchical cascade and to evaluate its possible link with star production in terms of multiplicity. From the Herschel emission maps of NGC 2264, clumps are extracted using getsf software at each of their associated spatial resolution, respectively [8.4, 13.5, 18.2, 24.9, 36.3]". Using the spatial distribution of these clumps and the class 0/I Young Stellar Object (YSO) from Spitzer data, we develop a graph-theoretic analysis to represent the multi-scale structure of the cloud as a connected network. From this network, we derive three classes of multi-scale structure in NGC 2264 depending on the number of…
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Taxonomy
TopicsAstrophysics and Star Formation Studies · Stellar, planetary, and galactic studies · Astro and Planetary Science
