Unravelling the structure of magnetized molecular clouds with SILCC-Zoom: sheets, filaments, and fragmentation

被引:12
作者
Ganguly, Shashwata [1 ]
Walch, S. [1 ,2 ]
Seifried, D. [1 ,2 ]
Clarke, S. D. [1 ,3 ]
Weis, M. [1 ]
机构
[1] Univ Cologne, Phys Inst 1, Z ulpicher Str 77, D-50937 K oln, Germany
[2] Univ Cologne, Cologne Ctr Data & Simulat Sci, Albertus Magnus Pl, D-50923 Cologne, Germany
[3] Acad Sinica, Inst Astron & Astrophys, 1 Sec 4,Roosevelt Rd, Taipei 10617, Taiwan
关键词
MHD; methods: numerical; stars: formation; ISM: clouds; ISM: kinematics and dynamics; STAR-FORMATION RATE; FIELD STRENGTHS; GRAVITATIONAL COLLAPSE; CHEMICAL EVOLUTION; COLUMN DENSITY; SPIRAL ARMS; SIMULATIONS; TURBULENT; RADIATION; ORIGIN;
D O I
10.1093/mnras/stad2054
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
To what extent magnetic fields affect how molecular clouds (MCs) fragment and create dense structures is an open question. We present a numerical study of cloud fragmentation using the SILCC-Zoom simulations. These simulations follow the self-consistent formation of MCs in a few hundred parsec-sized region of a stratified galactic disc; and include magnetic fields, self-gravity, supernova-driven turbulence, as well as a non-equilibrium chemical network. To discern the role of magnetic fields in the evolution of MCs, we study seven simulated clouds, five with magnetic fields, and two without, with a maximum resolution of 0.1 parsec. Using a dendrogram, we identify hierarchical structures, which form within the clouds. Overall, the magnetized clouds have more mass in a diffuse envelope with a number density between 1 and 100 cm(-3). We find that six out of seven clouds are sheet-like on the largest scales, as also found in recent observations, and with filamentary structures embedded within, consistent with the bubble-driven MC formation mechanism. Hydrodynamic simulations tend to produce more sheet-like structures also on smaller scales, while the presence of magnetic fields promotes filament formation. Analysing cloud energetics, we find that magnetic fields are dynamically important for less dense, mostly but not exclusively atomic structures (typically up to similar to 100-1000 cm(-3)), while the denser, potentially star-forming structures are energetically dominated by self-gravity and turbulence. In addition, we compute the magnetic surface term and demonstrate that it is generally confining, and some atomic structures are even magnetically held together. In general, magnetic fields delay the cloud evolution and fragmentation by similar to 1 Myr.
引用
收藏
页码:721 / 741
页数:21
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