Intermittent mildly magnetized jets as the source of GRBs

被引:24
|
作者
Gottlieb, Ore [1 ]
Bromberg, Omer [1 ]
Levinson, Amir [1 ]
Nakar, Ehud [1 ]
机构
[1] Tel Aviv Univ, Sch Phys & Astron, IL-69978 Tel Aviv, Israel
基金
以色列科学基金会;
关键词
instabilities; MHD; methods: numerical; gamma-ray burst: general; GAMMA-RAY BURSTS; VARIABILITY; INSTABILITY; EVOLUTION; LONG;
D O I
10.1093/mnras/stab1068
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Gamma-ray bursts (GRBs) are powered by relativistic jets that exhibit intermittency over a broad range of time-scales - from similar to ms to seconds. Previous numerical studies have shown that hydrodynamic (i.e. unmagnetized) jets that are expelled from a variable engine are subject to strong mixing of jet and cocoon material, which strongly inhibits the GRB emission. In this paper, we conduct 3D RMHD simulations of mildly magnetized jets with power modulation over durations of 0.1 s and 1 s, and a steady magnetic field at injection. We find that when the jet magnetization at the launching site is sigma similar to 0.1, the initial magnetization is amplified by shocks formed in the flow to the point where it strongly suppresses baryon loading. We estimate that a significant contamination can be avoided if the magnetic energy at injection constitutes at least a few percent of the jet energy. The variability time-scales of the jet after it breaks out of the star are then governed by the injection cycles rather than by the mixing process, suggesting that in practice jet injection should fluctuate on timescales as short as similar to 10 ms in order to account for the observed light curves. Better stability is found for jets with shorter modulations. We conclude that for sufficiently hot jets, the Lorentz factor near the photosphere can be high enough to allow efficient photospheric emission. Our results imply that jets with 10(-2) < sigma < 1 injected by a variable engine with similar to 10 ms duty cycle are plausible sources of long GRBs.
引用
收藏
页码:3947 / 3955
页数:9
相关论文
共 50 条
  • [21] Magnetized accretion flow, jets, and coronae
    Mineshige, S
    Kato, Y
    Ohsuga, K
    Kawanaka, N
    Astrophysical Sources of High Energy Particles and Radiation, 2005, 801 : 147 - 152
  • [22] Outflows and jets from magnetized disks
    Matsumoto, R
    Kudoh, T
    Shibata, K
    Hayashi, MR
    WILD STARS IN THE OLD WEST: PROCEEDINGS OF THE 13TH NORTH AMERICAN WORKSHOP ON CATACLYSMIC VARIABLES AND RELATED OBJECTS, 1997, 137 : 286 - 293
  • [23] Numerical simulations of relativistic magnetized jets
    Komissarov, SS
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 1999, 308 (04) : 1069 - 1076
  • [24] MHD simulation of magnetized laboratory jets
    Toropina, Olga D.
    Bisnovatyi-Kogan, Gennadiy S.
    Moiseenko, Sergey G.
    15TH MARCEL GROSSMANN MEETING, PT A, 2022, : 304 - 309
  • [25] Influence of AGN jets on the magnetized ICM
    Dubois, Yohan
    Devriendt, Julien
    Slyz, Adrianne
    Silk, Joseph
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2009, 399 (01) : L49 - L53
  • [26] Asymptotic theory of relativistic, magnetized jets
    Lyubarsky, Yuri
    PHYSICAL REVIEW E, 2011, 83 (01):
  • [27] Intermittent Activity of Jets in AGN
    Siemiginowska, Aneta
    Czerny, Bozena
    Janiuk, Agnieszka
    Stawarz, Lukasz
    Guainazzi, Matteo
    Celotti, Annalisa
    Migliori, Giulia
    Tengstrand, Olaf
    ACCRETION AND EJECTION IN AGN : A GLOBAL VIEW, 2010, 427 : 326 - +
  • [28] Deterministic Simulation of Mildly Intermittent Hydrologic Records
    Maskey, Mahesh L.
    Puente, Carlos E.
    Sivakumar, Bellie
    Cortis, Andrea
    JOURNAL OF HYDROLOGIC ENGINEERING, 2017, 22 (08)
  • [29] MILDLY RELATIVISTIC, BALLISTIC CORKSCREW JETS AS ROTATED SPIRALS
    Raga, A. C.
    Canto, J.
    REVISTA MEXICANA DE ASTRONOMIA Y ASTROFISICA, 2022, 58 (02) : 301 - 307
  • [30] Lorentz Factor Evolution Patterns within Relativistic Jets of GRBs and AGNs
    Zhang, Hai-Ming
    Lin, Da-Bin
    Lin, Ting-Ting
    Liu, Bao-Rong
    Huang, Xiao-Li
    Zhong, Shu-Qing
    Lu, Rui-Jing
    Liang, En-Wei
    NEW FRONTIERS IN BLACK HOLE ASTROPHYSICS, 2017, 12 (S324): : 78 - 81