Laboratory modeling of YSO jets collimation by a large-scale divergent interstellar magnetic field

被引:1
|
作者
Zemskov, R. [1 ]
Burdonov, K. [1 ]
Soloviev, A. [1 ]
Sladkov, A. [1 ]
Korzhimanov, A. [1 ]
Fuchs, J. [3 ]
Bisikalo, D. [4 ,5 ]
Zhilkin, A. [4 ]
Barkov, M. [4 ]
Ciardi, A. [6 ]
Yao, W. [3 ,6 ]
Glyavin, M. [1 ]
Morozkin, M. [1 ]
Proyavin, M. [1 ]
Luchinin, A. [1 ]
Chuvakin, P. [1 ]
Ginzburg, V. [1 ]
Kochetkov, A. [1 ]
Kuzmin, A. [1 ]
Shaykin, A. [1 ]
Shaikin, I. [1 ]
Perevalov, S. [1 ]
Kotov, A. [1 ]
Pikuz, S. [2 ]
Ryazantsev, S. [2 ]
Khazanov, E. [1 ]
Starodubtsev, M. [1 ]
机构
[1] Russian Acad Sci, IAP AV Gaponov Grekhov Inst Appl Phys, Nizhnii Novgorod 603950, Russia
[2] RAS, Joint Inst High Temp, Moscow 125412, Russia
[3] Sorbonne Univ, UPMC Univ Paris 06, Ecole Polytech, LULI CNRS,CEA,Inst Polytech Paris, F-91128 Palaiseau, France
[4] Russian Acad Sci, INASAN Inst Astron, Moscow 119017, Russia
[5] NCPhM Natl Ctr Phys & Math, Sarov, Russia
[6] Sorbonne Univ, PSL Res Univ, Observ Paris, LERMA,CNRS UMR 8112, F-75005 Paris, France
基金
俄罗斯基础研究基金会; 欧洲研究理事会;
关键词
stars: jets; stars: pre-main sequence; ISM: jets and outflows; YOUNG STELLAR OBJECTS; MOLECULAR CLOUD CORES; T-TAURI; HEI LAMBDA-10830; ACCRETION DISKS; DRIVEN JETS; COLLAPSE; WINDS; SIMULATIONS; INSTABILITY;
D O I
10.1051/0004-6361/202245251
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Context. Numerical studies as well as scaled laboratory experiments suggest that bipolar outflows arising from young stellar objects (YSOs) could be collimated into narrow and stable jets as a result of their interaction with a poloidal magnetic field. However, this magnetic collimation mechanism was demonstrated only for the simplified topology of the uniform poloidal magnetic field.Aims. We have extended the experimental studies to the case of a plasma outflow expanding in a region of strong poloidal magnetic field and then propagating through divergent magnetic field lines. In this case the magnetic field distribution is closer to the hourglass magnetic field distribution expected near YSOs. Our aim was to find out whether (and under what conditions) magnetic collimation is possible in such a strongly nonuniform B-field configuration.Methods. The experiments were carried out on the PEARL high-power laser facility. The laser produced plasma outflow was embedded in a strong (similar to 10T) magnetic field generated by our unique magnetic system. The morphology and dynamics of the plasma were diagnosed with a Mach-Zehnder interferometer.Results. Laboratory experiments and 3D numerical modeling allow us to reveal the various stages of plasma jet formation in a divergent poloidal magnetic field. The results show (i) that there is a fundamental possibility for magnetic collimation of a plasma outflow in a divergent magnetic field; (ii) that there is good scalability of astrophysical and laboratory flows; (iii) that the conditions for the formation of a magnetic nozzle, hence collimation by poloidal magnetic field, have been met; and (iv) that the propagation of the jet proceeds unimpeded through the region of weak and strongly divergent magnetic fields, maintaining a high aspect ratio.Conclusions. Since we have verified that the laboratory plasma scales favorably to YSO jets and outflows, our laboratory modeling hints at the possibility of the YSO jet collimation in a divergent poloidal magnetic field.
引用
收藏
页数:10
相关论文
共 50 条
  • [31] Large-Scale Magnetic Fields in Magnetohydrodynamic Turbulence
    Alexakis, Alexandros
    PHYSICAL REVIEW LETTERS, 2013, 110 (08)
  • [32] Self-similar structure of resistive ADAFs with outflow and large-scale magnetic field
    Ghoreyshi, S. M.
    PUBLICATIONS OF THE ASTRONOMICAL SOCIETY OF AUSTRALIA, 2020, 37
  • [33] The Large-scale Interstellar Medium of SS 433/W50 Revisited
    Su, Yang
    Zhou, Xin
    Yang, Ji
    Chen, Yang
    Chen, Xuepeng
    Zhang, Shaobo
    ASTROPHYSICAL JOURNAL, 2018, 863 (01)
  • [34] The emergence of zonal ocean jets under large-scale stochastic wind forcing
    O'Reilly, Christopher H.
    Czaja, Arnaud
    LaCasce, J. H.
    GEOPHYSICAL RESEARCH LETTERS, 2012, 39
  • [35] Monitoring the large-scale magnetic field of AD Leo with SPIRou, ESPaDOnS, and Narval Towards a magnetic polarity reversal?
    Bellotti, S.
    Morin, J.
    Lehmann, L. T.
    Folsom, C. P.
    Hussain, G. A. J.
    Petit, P.
    Donati, J. -f.
    Lavail, A.
    Carmona, A.
    Martioli, E.
    Romano Zaire, B.
    Alecian, E.
    Moutou, C.
    Fouque, P.
    Alencar, S.
    Artigau, E.
    Boisse, I.
    Bouchy, F.
    Cadieux, C.
    Cloutier, R.
    Cook, N. J.
    Delfosse, X.
    Doyon, R.
    Hebrard, G.
    Kochukhov, O.
    Wade, G. A.
    ASTRONOMY & ASTROPHYSICS, 2023, 676
  • [36] Tracing the large-scale magnetic field morphology in protoplanetary disks using molecular line polarization
    Lankhaar, Boy
    Vlemmings, Wouter
    Bjerkeli, Per
    ASTRONOMY & ASTROPHYSICS, 2022, 657
  • [37] Covariant polarized radiative transfer on cosmological scales for investigating large-scale magnetic field structures
    Chan, Jennifer Y. H.
    Wu, Kinwah
    On, Alvina Y. L.
    Barnes, David J.
    McEwen, Jason D.
    Kitching, Thomas D.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2019, 484 (02) : 1427 - 1455
  • [38] Energy balance and Alfven Mach numbers in compressible magnetohydrodynamic turbulence with a large-scale magnetic field
    Beattie, James R.
    Krumholz, Mark R.
    Skalidis, Raphael
    Federrath, Christoph
    Seta, Amit
    Crocker, Roland M.
    Mocz, Philip
    Kriel, Neco
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2022, 515 (04) : 5267 - 5284
  • [39] Angular momentum transport in a contracting stellar radiative zone embedded in a large-scale magnetic field
    Gouhier, B.
    Jouve, L.
    Lignieres, F.
    ASTRONOMY & ASTROPHYSICS, 2022, 661
  • [40] Formation of large-scale magnetic-towers in quasars
    Kato, Y.
    ASTRONOMISCHE NACHRICHTEN, 2006, 327 (5-6) : 450 - 453