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Current distribution of a VLF electric dipole antenna in the plasmasphere

机译:VLF电偶极子天线在等离子层中的电流分布

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摘要

In a recent paper (Inan et al., 2003) a method of remediating enhanced energetic electron fluxes in the radiation belt was proposed in which injection of VLF whistler mode waves from spacecraft within the radiation belts would dramatically increase the pitch angle scattering of the relativistic electrons and cause these particles to be rapidly lost from the belts, thereby mitigating the flux enhancement. The VLF wave transmitting system discussed by Inan et al. (2003) involves electric dipole antennas. One of the most important characteristics of such an antenna is the current distribution along the length of the dipole, since it is this current which ultimately determines the amount of VLF power which can be radiated from the antenna into the plasma. In past work it has been assumed without proof that the dipole current has a triangular distribution. In the present work we determine the dipole antenna current distribution from first principles, constructing an integral equation of the Hallén type relating the current distribution to the wave vector potential. In this development it is assumed that the length of the thin cylindrical dipole antenna is small compared to the wavelength of whistler mode waves which propagate parallel to the Earth's magnetic field Bo. In the case of the dipole antenna oriented parallel to Bo, it is found that the assumption of a triangular current distribution is reasonable for antenna lengths up to hundreds of meters. For the case of the antenna perpendicular to Bo, it is found that the current decays exponentially along the antenna from the feed points to the antenna ends. In this case we find the conditions under which a triangular current distribution is still a reasonable approximation. We also give the conditions under which the quasi-static model of Balmain (1964) reasonably describes the electric fields associated with the dipole antenna.
机译:在最近的一篇论文中(Inan等人,2003年),提出了一种补救辐射带中增强的高能电子通量的方法,其中,从航天器向航天器中注入VLF惠斯勒模式波会极大地增加相对论者的俯仰角散射电子,并导致这些粒子迅速从传送带中丢失,从而减轻了通量的提高。 Inan等人讨论的VLF波传输系统。 (2003年)涉及电偶极子天线。这种天线最重要的特性之一是沿着偶极子长度的电流分布,因为正是这种电流最终决定了可以从天线辐射到等离子体中的VLF功率量。在过去的工作中,没有证据证明偶极子电流具有三角分布。在当前的工作中,我们从第一原理确定偶极天线的电流分布,构建了一个将电流分布与波矢量电势相关的Hallén型积分方程。在该发展中,假设与平行于地球磁场Bo传播的啸叫模式波的波长相比,细圆柱形偶极天线的长度短。在偶极天线平行于Bo定向的情况下,发现对于电流长度达数百米的三角形电流分布的假设是合理的。对于垂直于Bo的天线,发现电流从馈电点到天线端沿天线呈指数衰减。在这种情况下,我们找到了三角形电流分布仍是合理近似值的条件。我们还给出了Balmain(1964)的准静态模型合理描述与偶极天线相关的电场的条件。

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