DocumentCode :
3069591
Title :
Quick triggering of magnetic reconnection mediated by lower hybrid drift instability
Author :
Shinohara, I. ; Tanaka, K.G. ; Fujimoto, Mitoshi
Author_Institution :
Inst. of Astronaut. Sci., Japan Aerosp. Exploration Agency, Kanagawa, Japan
fYear :
2004
fDate :
24-27 Aug. 2004
Firstpage :
592
Lastpage :
593
Abstract :
Carrying out a large scale 3D full kinetic simulation, we have shown that the effects of lower-hybrid waves at the edges of the current sheet provide a quick triggering of magnetic reconnection even in ion-scale current sheets. A thin embedded electron current layer is formed as a result of the non-linear evolution of the lower hybrid drift instability, which is sustained by accelerated meandering electrons around the neutral sheet, and the emergence of a thin electron current layer is subject to the quick reconnection triggering. However. there may be an upper-limit to the current sheet thickness for this type of quick triggering mediated by the lower-hybrid-drift instability alone because the lower-hybrid-drift wave activity becomes weaker in a thicker current sheet. To evaluate whether the quick triggering mechanism mediated by the lower-hybrid-drift instability is truly realistic, we performed a parametric study of magnetic reconnection with the lower hybrid drift instability. Consequently, we confirmed that the proposed scenario of the quick reconnection triggering is available with a real ion-electron mass ratio mi/me=1836. We also found that the upper-limit of the current sheet thickness depends sensitively on the strength of the guide magnetic field.
Keywords :
drift instability; magnetosphere; plasma kinetic theory; plasma simulation; 3D full kinetic simulation; accelerated meandering electrons; current sheet thickness limit; guide magnetic field strength; hybrid drift instability; ion-electron mass ratio; ion-scale current sheets; magnetic reconnection quick triggering; magnetospheric energy release phenomena; magnetospheric plasma; neutral sheet meandering electrons; thin embedded electron current layer; Acceleration; Distribution functions; Electrons; Geoscience; Kinetic theory; Magnetic fields; Magnetic reconnection; Magnetosphere; Plasma displays; Plasma simulation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Radio Science Conference, 2004. Proceedings. 2004 Asia-Pacific
Print_ISBN :
0-7803-8404-0
Type :
conf
DOI :
10.1109/APRASC.2004.1422571
Filename :
1422571
Link To Document :
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