Soler, Juan DiegoBeuther, H.Syed, JWang, Y.Anderson, L.D.Glover, Simon C OHennebelle, P.Heyer, MarkHenning, T.Izquierdo, A FMcClure-Griffiths, Naomi2022-07-252022-07-250004-6361http://hdl.handle.net/1885/269893We present a study of the filamentary structure in the emission from the neutral atomic hydrogen (HI) at 21 cm across velocity channels in the 40′′ and 1.5-km s−1 resolution position-position-velocity cube, resulting from the combination of the single-dish and interferometric observations in The HI/OH/recombination-line survey of the inner Milky Way. Using the Hessian matrix method in combination with tools from circular statistics, we find that the majority of the filamentary structures in the HI emission are aligned with the Galactic plane. Part of this trend can be assigned to long filamentary structures that are coherent across several velocity channels. However, we also find ranges of Galactic longitude and radial velocity where the HI filamentary structures are preferentially oriented perpendicular to the Galactic plane. These are located (i) around the tangent point of the Scutum spiral arm and the terminal velocities of the Molecular Ring, around l ≈ 28◦ and vLSR ≈ 100 km s−1, (ii) toward l ≈ 45◦ and vLSR ≈ 50 km s−1, (iii) around the Riegel-Crutcher cloud, and (iv) toward the positive and negative terminal velocities. A comparison with numerical simulations indicates that the prevalence of horizontal filamentary structures is most likely the result of large-scale Galactic dynamics and that vertical structures identified in (i) and (ii) may arise from the combined effect of supernova (SN) feedback and strong magnetic fields. The vertical filamentary structures in (iv) can be related to the presence of clouds from extra-planar HI gas falling back into the Galactic plane after being expelled by SNe. Our results indicate that a systematic characterization of the emission morphology toward the Galactic plane provides an unexplored link between the observations and the dynamical behavior of the interstellar medium, from the effect of large-scale Galactic dynamics to the Galactic fountains driven by SNe.J.D.S., H.B., and Y.W. acknowledge funding from the European Research Council under the Horizon 2020 Framework Program via the ERC Consolidator Grant CSF-648505. H.B., J.S., S.C.O.G., and R.K. acknowledge support from the Deutsche Forschungsgemeinschaft via SFB 881, “The Milky Way System” (subprojects A1, B1, B2, and B8). S.C.O.G. and R.K. also acknowledge support from the Deutsche Forschungsgemeinschaft via Germany’s Excellence Strategy EXC-2181/1-390900948 (the Heidelberg STRUCTURES Cluster of Excellence). R.K. also acknowledges funding from the European Research Council via the ERC Synergy Grant ECOGAL (grant 855130) and the access to the data storage service SDS@hd and computing services bwHPC supported by the Ministry of Science, Research and the Arts Baden-Württemberg (MWK) and the German Research Foundation (DFG) through grants INST 35/1314-1 FUGG as well as INST 35/1134-1 FUGG. N.S. acknowledges support by the Agence Nationale de la Recherche (ANR) and the DFG through the project “GENESIS” (ANR-16-CE92-0035-01/DFG1591/2-1)application/pdfen-AU© J. D. Soler et al. 2020https://creativecommons.org/licenses/by/4.0/ISM: structureISM: kinematics and dynamicsISM: atomsISM: cloudsGalaxy: structureradio lines: ISMThe history of dynamics and stellar feedback revealed by the H i filamentary structure in the disk of the Milky Way202010.1051/0004-6361/2020388822021-08-01Creative Commons Attribution 4.0 International License