Particle acceleration in a reconnecting current sheet: PIC simulation

被引:30
|
作者
Siversky, Taras V. [1 ]
Zharkova, Valentina V. [1 ]
机构
[1] Univ Bradford, Dept Comp, Bradford BD7 1DP, W Yorkshire, England
关键词
IMPULSIVE SOLAR-FLARES; MAGNETIC RECONNECTION; ELECTRON ACCELERATION; ENERGY-SPECTRA; FIELD;
D O I
10.1017/S0022377809008009
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
The acceleration of protons and electrons in a reconnecting current sheet (RCS) is simulated with a particle-in-cell (PIC) 2D3V (two-dimensional in space and three-dimensional in velocity spate) code for the proton-to-electron mass ratio of 100 The electromagnetic configuration forming the RCS incorporates all three components of the magnetic field (including the guiding field) and a drifted electric field. PIC simulations reveal that there is a, polarization electric field that appears during acceleration owing to a separation of electrons from protons towards the midplane of the RCS. If Be plasma density is low, the polarization AM is weak and the particle trajectories in the PIC simulations are similar to those in the test particle (TP) approach. For the higher plasma. density the polarization field is stronger and it affects the trajectories of protons by increasing their orbits during acceleration. This field also leads to a, less asymmetrical abundance of ejected protons towards the midplane in comparison with the TP approach. For a given magnetic topology electrons in PIC simulations are ejected to the same semispace as protons, in contrast to the TP results. This happens because the polarization field extends far beyond the thickness of a current sheet. This field decelerates the electrons, which are initially ejected into the semispace opposite to the protons, returns them back to the RCS, and eventually, leads to the electron ejection into the same semispace as protons. The energy distribution of the ejected electrons is rather wide and single-peaked, in contrast to the two-peak narrow-energy distribution obtained in the TP approach. In the case of a strong guiding field, the the mean energy of the ejected electrons is found to be smaller than it is predicted analytically and by the TP simulations. The beam of accelerated electrons is also found to generate turbulent electric field in the form of Langmuir waves.
引用
收藏
页码:619 / 636
页数:18
相关论文
共 50 条
  • [31] Particle acceleration in reconnecting current sheets in impulsive electron-rich solar flares
    Litvinenko, YE
    SOLAR PHYSICS, 2000, 194 (02) : 327 - 343
  • [32] ON RELATIVISTIC ACCELERATION OF IONS IN RECONNECTING CURRENT SHEETS
    LITVINENKO, YE
    SOMOV, BV
    IZVESTIYA AKADEMII NAUK SERIYA FIZICHESKAYA, 1995, 59 (07): : 218 - 220
  • [33] A RECONNECTING CURRENT SHEET IMAGED IN A SOLAR FLARE
    Liu, Rui
    Lee, Jeongwoo
    Wang, Tongjiang
    Stenborg, Guillermo
    Liu, Chang
    Wang, Haimin
    ASTROPHYSICAL JOURNAL LETTERS, 2010, 723 (01) : L28 - L33
  • [34] ACCELERATION OF NONRELATIVISTIC PARTICLES IN RECONNECTING CURRENT SHEETS
    SMITH, DF
    BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1977, 22 (09): : 1206 - 1206
  • [35] Proton acceleration in analytic reconnecting current sheets
    Heerikhuisen, J
    Litvinenko, YE
    Craig, IJD
    ASTROPHYSICAL JOURNAL, 2002, 566 (01): : 512 - 520
  • [36] Chaotic Charged Particle Motion and Acceleration in Reconnected Current Sheet
    Artemyev, A. V.
    Neishtadt, A. I.
    Zimovets, I. V.
    Zelenyi, L. M.
    SOLAR PHYSICS, 2015, 290 (03) : 787 - 810
  • [37] PARTICLE ORBITS, TRAPPING, AND ACCELERATION IN A FILAMENTARY CURRENT SHEET MODEL
    KLIEM, B
    ASTROPHYSICAL JOURNAL SUPPLEMENT SERIES, 1994, 90 (02): : 719 - 728
  • [39] Chaotic Charged Particle Motion and Acceleration in Reconnected Current Sheet
    A. V. Artemyev
    A. I. Neishtadt
    I. V. Zimovets
    L. M. Zelenyi
    Solar Physics, 2015, 290 : 787 - 810
  • [40] Electromagnetic perturbations in the reconnecting current sheet in MRX
    Dorfman, Seth
    Ji, Hantao
    Yamada, Masaaki
    Ren, Yang
    Gerhardt, Stefan
    Kulsrud, Russell
    McGeehan, Brendan
    Wang, Yansong
    THEORY OF FUSION PLASMAS, 2006, 871 : 306 - +