Magnetic acceleration of relativistic jets

被引:0
|
作者
Barkov, Maxim V. [1 ]
机构
[1] Univ Leeds, Dept Appl Math, Leeds LS2 9GT, W Yorkshire, England
关键词
D O I
暂无
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
We present numerical simulations of axisymmetric, magnetically driven relativistic jets. To eliminate the dissipative effects induced by a free boundary with an ambient medium we assume that the flow is confined by a rigid wall of a prescribed shape, which we take to be z CC r(a) (in cylindrical coordinates, with a ranging from I to 3). We also prescribe, through the rotation profile at the inlet boundary, the injected poloidal current distribution: we explore cases where the return current flows either within the volume of the jet or on the outer boundary. The outflows are initially cold, sub-Alfvenic and Poynting flux-dominated, with a total-to-rest-mass energy flux ratio mu similar to 15. We find that in all cases they converge to a steady state characterized by a spatially extended acceleration region. The acceleration process is very efficient: on the outermost scale of the simulation as much as similar to 77% of the Poynting flux has been converted into kinetic energy flux, and the terminal Lorentz factor approaches its maximum possible value (Gamma(infinity) similar or equal to mu). We also find a high collimation efficiency: all our simulated jets (including the limiting case of an unconfined flow) develop a cylindrical core. We argue that this could be the rule for current-carrying outflows that start with a low initial Lorentz factor (Gamma(0) similar to 1). Our conclusions on the high acceleration and collimation efficiencies are not sensitive to the particular shape of the confining boundary or to the details of the injected current distribution, and they are qualitatively consistent with the semi-analytic self-similar solutions derived by Vlahakis & Konigl. We apply our results to the interpretation of relativistic jets in AGNs: we argue that they naturally account for the spatially extended accelerations inferred in these sources (Gamma(infinity) greater than or similar to 10 attained on radial scales R greater than or similar to 10(17) cm) and are consistent with the transition
引用
收藏
页码:79 / 84
页数:6
相关论文
共 50 条
  • [41] Parker’s magnetic field and relativistic jets
    G. N. Kichigin
    Journal of Experimental and Theoretical Physics, 2014, 119 : 657 - 662
  • [42] Parker's magnetic field and relativistic jets
    Kichigin, G. N.
    JOURNAL OF EXPERIMENTAL AND THEORETICAL PHYSICS, 2014, 119 (04) : 657 - 662
  • [43] Magnetic inhibition of the recollimation instability in relativistic jets
    Matsumoto, Jin
    Komissarov, Serguei S.
    Gourgouliatos, Konstantinos N.
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2021, 503 (04) : 4918 - 4929
  • [44] Particle acceleration and jets in collisionless magnetic reconnection
    Vekstein, GE
    PROCEEDINGS OF AN INTERNATIONAL MEETING ON SOLAR JETS AND CORONAL PLUMES, 1998, 421 : 193 - 198
  • [45] MAGNETIC ACCELERATION OF ULTRARELATIVISTIC GRB AND AGN JETS
    Barkov, M. V.
    Komissarov, S. S.
    INTERNATIONAL JOURNAL OF MODERN PHYSICS D, 2008, 17 (10): : 1669 - 1675
  • [47] Shock formation at the magnetic collimation of relativistic jets
    Bogovalov, S
    Tsinganos, K
    MONTHLY NOTICES OF THE ROYAL ASTRONOMICAL SOCIETY, 2005, 357 (03) : 918 - 928
  • [48] Particle Acceleration by Relativistic Magnetic Reconnection Driven by Kink Instability Turbulence in Poynting Flux-Dominated Jets
    Medina-Torrejon, Tania E.
    de Gouveia Dal Pino, Elisabete M.
    Kadowaki, Luis H. S.
    Kowal, Grzegorz
    Singh, Chandra B.
    Mizuno, Yosuke
    ASTROPHYSICAL JOURNAL, 2021, 908 (02):
  • [49] Pondermotive acceleration of charged particles along the relativistic jets of an accreting blackhole
    T. Ebisuzaki
    T. Tajima
    The European Physical Journal Special Topics, 2014, 223 : 1113 - 1120
  • [50] Kinetic Simulations of Instabilities and Particle Acceleration in Cylindrical Magnetized Relativistic Jets
    Ortuno-Macias, Jose
    Nalewajko, Krzysztof
    Uzdensky, Dmitri A.
    Begelman, Mitchell C.
    Werner, Gregory R.
    Chen, Alexander Y.
    Mishra, Bhupendra
    ASTROPHYSICAL JOURNAL, 2022, 931 (02):