A LARGE-PARTICLE MONTE-CARLO CODE FOR SIMULATING NONLINEAR HIGH-ENERGY PROCESSES NEAR COMPACT OBJECTS

被引:73
作者
STERN, BE
BEGELMAN, MC
SIKORA, M
SVENSSON, R
机构
[1] UNIV COLORADO,JOINT INST LAB ASTROPHYS,BOULDER,CO 80309
[2] NATL INST STAND & TECHNOL,BOULDER,CO 80309
[3] UNIV COLORADO,DEPT ASTROPHYS PLANETARY & ATMOSPHER SCI,BOULDER,CO 80309
[4] NICHOLAS COPERNICUS ASTRON CTR,PL-00716 WARSAW,POLAND
[5] STOCKHOLM OBSERV,S-13336 SALTSJOBADEN,SWEDEN
关键词
PLASMAS; RADIATION MECHANISMS; NONTHERMAL; RADIATIVE TRANSFER; METHODS; NUMERICAL; GALAXIES; JETS; GAMMA-RAYS; BURSTS;
D O I
10.1093/mnras/272.2.291
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
High-energy radiation processes in compact cosmic objects are often expected to have a strongly non-linear behaviour. Such behaviour is shown, for example, by electron-positron pair cascades and the time evolution of relativistic proton distributions in dense radiation fields. Three independent techniques have been developed to simulate these non-linear problems: the kinetic equation approach; the phase-space density (PSD) Monte Carlo method; and the large-particle (LP) Monte Carlo method. In this paper, we present the latest version of the LP method and compare it with the other methods. The efficiency of the method in treating geometrically complex problems is illustrated by showing results of simulations of 1D, 2D and 3D systems. The method is shown to be powerful enough to treat non-spherical geometries, including such effects as bulk motion of the background plasma, reflection of radiation from cold matter, and anisotropic distributions of radiating particles. It can therefore be applied to simulate high-energy processes in such astrophysical systems as accretion discs with coronae, relativistic jets, pulsar magnetospheres and gamma-ray bursts.
引用
收藏
页码:291 / 307
页数:17
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