MAGNETIC ACCELERATION OF ULTRARELATIVISTIC GRB AND AGN JETS
被引:18
作者:
Barkov, M. V.
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机构:
Univ Leeds, Dept Appl Math, Leeds LS2 9GT, W Yorkshire, England
Space Res Inst, Moscow 117997, RussiaUniv Leeds, Dept Appl Math, Leeds LS2 9GT, W Yorkshire, England
Barkov, M. V.
[1
,2
]
Komissarov, S. S.
论文数: 0引用数: 0
h-index: 0
机构:
Univ Leeds, Dept Appl Math, Leeds LS2 9GT, W Yorkshire, EnglandUniv Leeds, Dept Appl Math, Leeds LS2 9GT, W Yorkshire, England
Komissarov, S. S.
[1
]
机构:
[1] Univ Leeds, Dept Appl Math, Leeds LS2 9GT, W Yorkshire, England
[2] Space Res Inst, Moscow 117997, Russia
来源:
INTERNATIONAL JOURNAL OF MODERN PHYSICS D
|
2008年
/
17卷
/
10期
基金:
英国科学技术设施理事会;
关键词:
Jets acceleration;
gamma-ray bursts;
active galactic nuclei;
pulsar wind nebulae;
D O I:
10.1142/S0218271808013285
中图分类号:
P1 [天文学];
学科分类号:
0704 ;
摘要:
We present numerical simulations of cold, axisymmetric, magnetically driven relativistic outflows. The outflows are initially sub-Alfvenic and Poynting-flux dominated, with total-to-rest-mass energy flux ratio up to mu similar to 620. To study the magnetic acceleration of jets we simulate flows confined within a funnel with a rigid wall of prescribed shape, which we take to be z proportional to r(a) (in cylindrical coordinates, with a ranging from 1 to 2). This allows us to eliminate the numerical dissipative effects induced by a free boundary with an ambient medium. We find that in all cases they converge to a steady state characterized by a spatially extended acceleration region. For the jet solutions the acceleration process is very efficient - on the outermost scale of the simulation more than half of the Poynting flux has been converted into kinetic energy flux, and the terminal Lorentz factor approached its maximum possible value (Gamma(infinity) similar or equal to mu). The acceleration is accompanied by the collimation of magnetic field lines in excess of that dictated by the funnel shape. The numerical solutions are generally consistent with the semi-analytic self-similar jets solutions and the spatially extended acceleration observed in some astrophysical relativistic jets. In agreement with previous studies, we also find that the acceleration is significantly less effective for wind solutions suggesting that pulsar winds may remain Poynting dominated when they reach the termination shock.