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Hierarchical hub-filament structures and gas inflows on galaxy-cloud scales

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arxiv 2404.15862 v1 pith:XGLH6GSM submitted 2024-04-24 astro-ph.GA

classification astro-ph.GA
keywords scalesstructuresvelocitycollapsegalaxy-cloudgravitationalcloudgalaxies
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abstract

We investigated the kinematics and dynamics of gas structures on galaxy-cloud scales in two spiral galaxies NGC5236 (M83) and NGC4321 (M100) using CO (2$-$1) line. We utilized the FILFINDER algorithm on integrated intensity maps for the identification of filaments in two galaxies. Clear fluctuations in velocity and density were observed along these filaments, enabling the fitting of velocity gradients around intensity peaks. The variations in velocity gradient across different scales suggest a gradual and consistent increase in velocity gradient from large to small scales, indicative of gravitational collapse, something also revealed by the correlation between velocity dispersion and column density of gas structures. Gas structures at different scales in the galaxy may be organized into hierarchical systems through gravitational coupling. All the features of gas kinematics on galaxy-cloud scale are very similar to that on cloud-clump and clump-core scales studied in previous works. Thus, the interstellar medium from galaxy to dense core scales presents multi-scale/hierarchical hub-filament structures. Like dense core as the hub in clump, clump as the hub in molecular cloud, now we verify that cloud or cloud complex can be the hub in spiral galaxies. Although the scaling relations and the measured velocity gradients support the gravitational collapse of gas structures on galaxy-cloud scales, the collapse is much slower than a pure free-fall gravitational collapse.

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  1. An examination of large-scale galactic effects on molecular cloud properties in NGC 628 : The significant impact of tidal effects from neighboring material on the evolution of molecular clouds

    astro-ph.GA 2025-01 conditional novelty 5.0 of 10

    In NGC 628, tidal forces from neighboring material are strongest in the galactic center and decline outward, matching the rise in molecular cloud density contrast, suggesting tides hinder cloud collapse and star forma...

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