Protostellar disk formation and transport of angular momentum during magnetized core collapse

被引:221
作者
Joos, M. [1 ]
Hennebelle, P. [1 ]
Ciardi, A. [1 ]
机构
[1] Univ Paris 06, Ecole Normale Super, Lab Radioastron, LERMA,UMR CNRS 8112, F-75231 Paris 05, France
关键词
magnetohydrodynamics (MHD); stars: formation; stars: low-mass; ADAPTIVE MESH REFINEMENT; YOUNG STELLAR OBJECTS; STAR-FORMATION; ENVELOPE STRUCTURE; GRAVITATIONAL COLLAPSE; DENSE CORE; ACCRETION; BRAKING; ROTATION; OUTFLOWS;
D O I
10.1051/0004-6361/201118730
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Context. Theoretical studies of collapsing clouds have found that even a relatively weak magnetic field may prevent the formation of disks and their fragmentation. However, most previous studies have been limited to cases where the magnetic field and the rotation axis of the cloud are aligned. Aims. We study the transport of angular momentum, and its effects on disk formation, for non-aligned initial configurations and a range of magnetic intensities. Methods. We perform three-dimensional, adaptive mesh, numerical simulations of magnetically supercritical collapsing dense cores using the magneto-hydrodynamic code RAMSES. We compute the contributions of all the relevant processes transporting angular momentum, in both the envelope and the region of the disk. We clearly define centrifugally supported disks and thoroughly study their properties. Results. At variance with earlier analyses, we show that the transport of angular momentum acts less efficiently in collapsing cores with non-aligned rotation and magnetic field. Analytically, this result can be understood by taking into account the bending of field lines occurring during the gravitational collapse. For the transport of angular momentum, we conclude that magnetic braking in the mean direction of the magnetic field tends to dominate over both the gravitational and outflow transport of angular momentum. We find that massive disks, containing at least 10% of the initial core mass, can form during the earliest stages of star formation even for mass-to-flux ratios as small as three to five times the critical value. At higher field intensities, the early formation of massive disks is prevented. Conclusions. Given the ubiquity of Class I disks, and because the early formation of massive disks can take place at moderate magnetic intensities, we speculate that for stronger fields, disks will form later, when most of the envelope will have been accreted. In addition, we speculate that some observed early massive disks may actually be outflow cavities, mistaken for disks by projection effects.
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页数:22
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共 47 条
[31]   Nucleosynthesis in jets from rotating magnetized stars during core collapse [J].
Fujimoto, Shin-ichirou ;
Nishimura, Nobuya ;
Hashimoto, Masa-aki .
FRONTIERS IN NUCLEAR STRUCTURE, ASTROPHYSICS, AND REACTIONS: FINUSTAR 2, 2008, 1012 :318-+
[32]   THREE-DIMENSIONAL MAGNETOHYDRODYNAMIC SIMULATIONS OF CIRCUMBINARY ACCRETION DISKS: DISK STRUCTURES AND ANGULAR MOMENTUM TRANSPORT [J].
Shi, Ji-Ming ;
Krolik, Julian H. ;
Lubow, Stephen H. ;
Hawley, John F. .
ASTROPHYSICAL JOURNAL, 2012, 749 (02)
[33]   The evolution of the angular momentum distribution during star formation [J].
Tomisaka, K .
ASTROPHYSICAL JOURNAL, 2000, 528 (01) :L41-L44
[34]   ANGULAR MOMENTUM LOSS IN THE ENVELOPE-DISK TRANSITION REGION OF THE HH 111 PROTOSTELLAR SYSTEM: EVIDENCE FOR MAGNETIC BRAKING? [J].
Lee, Chin-Fei ;
Hwang, Hsiang-Chih ;
Li, Zhi-Yun .
ASTROPHYSICAL JOURNAL, 2016, 826 (02)
[35]   The impact of the Hall effect during cloud core collapse: Implications for circumstellar disk evolution [J].
Tsukamoto, Yusuke ;
Okuzumi, Satoshi ;
Iwasaki, Kazunari ;
Machida, Masahiro N. ;
Inutsuka, Shu-ichiro .
PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF JAPAN, 2017, 69 (06)
[36]   Angular momentum distribution during the collapse of primordial star-forming clouds [J].
Jayanta Dutta .
Astrophysics and Space Science, 2016, 361
[37]   ANGULAR-MOMENTUM TRANSPORT IN MAGNETIZED STELLAR RADIATIVE ZONES .1. NUMERICAL-SOLUTIONS TO THE CORE SPIN-UP MODEL PROBLEM [J].
CHARBONNEAU, P ;
MACGREGOR, KB .
ASTROPHYSICAL JOURNAL, 1992, 387 (02) :639-661
[38]   Dust coagulation during the early stages of star formation: molecular cloud collapse and first hydrostatic core evolution [J].
Bate, Matthew R. .
MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2022, 514 (02) :2145-2161
[39]   ANGULAR-MOMENTUM TRANSPORT IN MAGNETIZED STELLAR RADIATIVE ZONES .2. THE SOLAR SPIN-DOWN [J].
CHARBONNEAU, P ;
MACGREGOR, KB .
ASTROPHYSICAL JOURNAL, 1993, 417 (02) :762-780
[40]   FORMATION OF BLACK HOLE AND ACCRETION DISK IN A MASSIVE HIGH-ENTROPY STELLAR CORE COLLAPSE [J].
Sekiguchi, Yuichiro ;
Shibata, Masaru .
ASTROPHYSICAL JOURNAL, 2011, 737 (01)