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首页> 外文期刊>Journal of Geophysical Research, A. Space Physics: JGR >Solar wind-magnetosphere-ionosphere coupling: Neutral atmosphere effects on signal propagation
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Solar wind-magnetosphere-ionosphere coupling: Neutral atmosphere effects on signal propagation

机译:太阳能wind-magnetosphere-ionosphere耦合:中性大气对信号传播的影响

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Waves that propagate between the outer magnetospheric regions (in particular the magnetopause or the magnetotail) and the ionosphere and thereby mediate the dynamic processes of the magnetosphere-ionosphere-thermosphere system are affected at the lower end of their paths by the interaction of the plasma with the neutral atmosphere. We use three-fluid equations (electrons, ions, and neutral particles) to study wave propagation and derive the general dispersion relation, under the simplifying assumptions of incompressible parallel propagation in a locally uniform system. Included are the effects of ion-neutral, electron-neutral, and ion-electron collisions on the electric current and on the plasma flow, as well as the effect of plasma-neutral collisions on the neutral atmospheric flow. At low frequencies, near and below the ion-neutral collision frequency, the properties of propagating perturbations are modified as a result of the interaction with the neutral atmosphere. Because the wavelengths may be too long for the local-uniformity assumption to apply, the quantitative statement of the modifications may not be reliable, but their qualitative properties are clear. Wave speed becomes substantially slower than the Alfvén speed because of inertia loading by neutrals. Waves are significantly damped because of plasma-neutral friction. Left-handed and right-handed waves have different dispersion properties because ion motion is inhibited much more than electron motion by collisions with neutrals. At still lower frequencies, below the neutral-ion collision frequency, plasma and neutrals move together, leading to wave speed equal to the Alfvén speed based on the total (plasma plus neutral) mass density and to disappearance of damping and of differences between left-handed and right-handed dispersions. These results indicate that the coupling of ionosphere and neutral atmosphere is better described as a (frictional) neutral-drag process rather than as Ohmic dissipation, in agreement with the conclusions of another direct study of energy equations in the ionosphere-atmosphere system.
机译:波,外层之间的传播(尤其是磁性层的区域磁或磁尾)和电离层,从而调节动态流程的magnetosphere-ionosphere-thermosphere系统影响低端的路径的中性等离子体的相互作用的气氛。(电子、离子和中性粒子)来研究波传播和推导出一般色散关系,简化假设不可压缩的并行在当地传播统一的系统。ion-neutral的影响、electron-neutral在电子和离子电子碰撞电流和等离子体流,以及plasma-neutral碰撞的影响中性大气流动。下面附近ion-neutral碰撞频率、传播的特性扰动的修改结果与中性大气相互作用。的波长太长适用于local-uniformity假设,定量的表述修改不可靠的,但他们的定性性质是显而易见的。因为惯性比阿尔芬速度慢加载的中性色。因为plasma-neutral摩擦阻尼。左撇子和右撇子波有不同的因为离子运动是色散特性抑制比电子运动与中性色的碰撞。频率低于neutral-ion碰撞频率、等离子体和中性一起移动,导致波速等于阿尔芬速度基于总质量(等离子体加上中性)密度和阻尼和消失左撇子和右撇子之间的区别分散体。耦合电离层和中性大气更好地描述为一个(摩擦)中性阻力而不是欧姆耗散过程,协议的另一个直接的结论研究的能量方程ionosphere-atmosphere系统。

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