Title :
Particle simulation of the magnetic reconnection with adaptive mesh refinement method
Author :
Machida, Shinobu
Author_Institution :
Dept. of Geophys., Kyoto Univ., Japan
Abstract :
Summary form only given. We have developed a new code combining a full particle electromagnetic code with an adaptive mesh refinement (AMR) method in which a grid is divided into subgrids (four subgrids in a 2D code) to achieve a high spatial resolution in an efficient manner (Fujimoto, K and Machida, S., 2004). By applying this code to the magnetic reconnection in the terrestrial magnetotail with a Harris-type thin current sheet, we study the formation and development of the magnetic reconnection and the process that breaks the frozen-in condition of the electrons to make the magnetic fields merge. We find the contribution of the electron inertia and also the divergence of the electron pressure tensor in balancing with the duskward electric field at the center of the reconnection, i.e., the magnetic neutral line, as is already known. In the downstream region just outside the neutral line, we found significant electron heating. The distribution function of electrons is not isotropic but has an anisotropic distribution in which the electrons are more heated in the perpendicular direction. This result is consistent with our previous study (Fujimoto and Machida, 2003) in which electrons are perpendicularly heated by the waves excited by electron cyclotron drift instability when the bulk flow velocity of electrons far exceeds the electron thermal velocity. We report various types of distribution functions of ions and electrons found in the simulation system and compare the model with spacecraft observations.
Keywords :
astrophysical plasma; computational electromagnetics; digital simulation; electric current; electric fields; electrons; geomagnetism; magnetic fields; plasma simulation; Harris-type thin current sheet; adaptive mesh refinement; adaptive mesh refinement method; anisotropic distribution; duskward electric field; electron cyclotron drift instability; electron distribution function; electron heating; electron inertia; electron pressure tensor; electron thermal velocity; magnetic fields; magnetic neutral line; magnetic reconnection; particle electromagnetic code; particle simulation; space plasma; spacecraft observations; spatial resolution; terrestrial magnetotail; Adaptive mesh refinement; Distribution functions; Electrons; Heating; Magnetic anisotropy; Magnetic fields; Magnetic reconnection; Perpendicular magnetic anisotropy; Spatial resolution; Tensile stress;
Conference_Titel :
Radio Science Conference, 2004. Proceedings. 2004 Asia-Pacific
Print_ISBN :
0-7803-8404-0
DOI :
10.1109/APRASC.2004.1422567