首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Electromagnetic fluctuations of the whistler-cyclotron and firehose instabilities in a Maxwellian and Tsallis-kappa-like plasma
【24h】

Electromagnetic fluctuations of the whistler-cyclotron and firehose instabilities in a Maxwellian and Tsallis-kappa-like plasma

机译:电磁波动的whistler-cyclotron出现不稳定麦克斯韦和Tsallis-kappa-like等离子体

获取原文
获取原文并翻译 | 示例
           

摘要

Observed electron velocity distributions in the Earth's magnetosphere and the solar wind exhibit a variety of nonthermal features which deviate from thermal equilibrium, for example, in the form of temperature anisotropies, suprathermal tail extensions, and field-aligned beams. The state close to thermal equilibrium and its departure from it provides a source for spontaneous emissions of electromagnetic fluctuations, such as the whistler. Here we present a comparative analysis of the electron whistler-cyclotron and firehose fluctuations based upon anisotropic plasma modeled with Maxwellian and Tsallis-kappa-like particle distributions, to explain the correspondence relationship of the magnetic fluctuations as a function of the electron temperature and thermal anisotropy in the solar wind and magnetosphere plasmas. The analysis presented here considers correlation theory of the fluctuation-dissipation theorem and the dispersion relation of transverse fluctuations, with wave vectors parallel to the uniform background magnetic field, in a finite temperature anisotropic thermal bi-Maxwellian and nonthermal Tsallis-kappa-like magnetized electron-proton plasma. Dispersion analysis and stability thresholds are derived for these thermal and nonthermal distributions using plasma and field parameters relevant to the solar wind and magnetosphere environments. Our results indicate that there is an enhancement of the fluctuations level in the case of nonthermal distributions due to the effective higher temperature and the excess of suprathermal particles. These results suggest that a comparison of the electromagnetic fluctuations due to thermal and nonthermal distributions provides a diagnostic signature by which inferences about the nature of the particle velocity distribution function can be ascertained without in situ particle measurements.
机译:观察到电子的速度分布地球的磁气圈和太阳风展览各种各样的低温特性偏离从热平衡,例如,在形式的温度各向异性,suprathermal尾巴扩展,field-aligned梁。接近热平衡及其状态离开它提供了一个来源自发的电磁排放波动,如惠斯勒。提供一个电子的比较分析whistler-cyclotron和消防带波动基于各向异性等离子体建模麦克斯韦和Tsallis-kappa-like粒子分布,解释了信件磁场波动的关系功能的电子温度和热各向异性太阳风、磁气圈等离子体。涨落耗散的相关理论定理和横向的色散关系波动,波向量平行统一的背景磁场,在有限的各向异性热bi-Maxwellian和温度非热能的Tsallis-kappa-like磁化electron-proton等离子体。稳定阈值派生热利用等离子体和非热能的分布和现场参数相关的太阳风和磁层环境。表明有一个增强的对于非热能的波动水平分布由于有效的高温度和suprathermal过多粒子。比较的电磁波动由于热和非热能的分布提供了一个诊断的签名推断出粒子的性质速度分布函数可以确定没有粒子原位测量。

著录项

相似文献

  • 外文文献
  • 中文文献
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号