Experimental evidence of drift compressional waves in the magnetosphere: An Ekaterinburg coherent decameter radar case study

被引:16
作者
Chelpanov, Maksim A. [1 ]
Mager, Pavel N. [1 ]
Klimushkin, Dmitri Yu. [1 ]
Berngardt, Oleg I. [1 ]
Mager, Olga V. [1 ]
机构
[1] Russian Acad Sci, Siberian Branch, Inst Solar Terr Phys, Irkutsk 664003, Russia
关键词
ULF waves; kinetic instabilities; FIELD LINE RESONANCES; STANDING ALFVEN WAVES; VAN ALLEN PROBES; M-ULF WAVE; SOLAR-WIND; HYDROMAGNETIC-WAVES; SUBSTORM INJECTION; COORDINATE SYSTEM; PC-5; PULSATION; SUPERDARN;
D O I
10.1002/2015JA022155
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
A case study of shortwave radar observations of magnetospheric Pc5 ULF waves (wave periods of 150-600s) that occurred on 26December 2014 in the nightside magnetosphere during substorm activity is presented. The radar study of waves in the magnetosphere is based on analysis of scattering from field-aligned irregularities of the ionospheric F layer. Variations of their E</mml:mover>x<mml:mover accent="true">B<mml:mo></mml:mover> drift velocity at F layer heights are associated with the wave electric field. Analysis of the observations from the Ekaterinburg (EKB) radar shows that the frequency f of the observed wave depends on the azimuthal wave number m (positive correlation of about 0.90): an increase in frequency from 2.5 to 5mHz corresponds to increased m number from 20 to 80. Of the known types of waves in the magnetosphere corresponding to the Pc5 range, only drift compressional waves have such azimuthal dispersion: the frequency of the drift compressional mode is directly proportional to the azimuthal wave number and the gradient-curvature drift velocity of energetic particles in the magnetic field. This wave has a kinetic nature and represents the most common kind of the compressional modes, demanding for its existence only finite pressure and plasma inhomogeneity across magnetic shells. Key Points
引用
收藏
页码:1315 / 1326
页数:12
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