Ion cyclotron heating in the dayside magnetosphere

被引:71
作者
Norqvist, P
Andre, M
Eliasson, L
Eriksson, AI
Blomberg, L
Luhr, H
Clemmons, JH
机构
[1] ROYAL INST TECHNOL, DIV PLASMA PHYS, ALFVEN LAB, S-10044 STOCKHOLM, SWEDEN
[2] NASA, GODDARD SPACE FLIGHT CTR, GREENBELT, MD 20771 USA
[3] MAX PLANCK INST EXTRATERR PHYS, D-85740 GARCHING, GERMANY
[4] SWEDISH INST SPACE PHYS, S-98128 KIRUNA, SWEDEN
[5] SWEDISH INST SPACE PHYS, S-75591 UPPSALA, SWEDEN
[6] TECH UNIV CAROLO WILHELMINA BRAUNSCHWEIG, INST GEOPHYS & METEOROL, D-38106 BRAUNSCHWEIG, GERMANY
关键词
D O I
10.1029/95JA03596
中图分类号
P1 [天文学];
学科分类号
0704 ;
摘要
Observations of waves and particles obtained by the Freja satellite at altitudes around 1700 km in the dayside high-latitude magnetosphere are used to study ion energization. We find that ions, including O+, during several events of intense ion energization can be heated perpendicularly to the geomagnetic field to mean energies df up to about 20 eV via the process of cyclotron resonance by broadband waves around the ion gyrofrequencies. There is a good correlation between such broadband waves and the ion energization. The waves show no spectral features at the O+ gyrofrequency. The observed wave amplitudes are used as an input to a Monte Carlo simulation to obtain the observed ion energies. The waves around the ion gyrofrequencies may be generated either by field-aligned electrons or by nonlinear processes transferring energy from waves with lower frequencies. Not only the mean energy but also the shape of the particle distribution agrees with the cyclotron resonance heating mechanism. Other mechanisms, such as heating by lower hybrid waves or by a slowly varying electric field, are investigated but are found to be less important than cyclotron heating in this region of space.
引用
收藏
页码:13179 / 13193
页数:15
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