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Whistler wave propagation and whistler wave antenna radiation resistance measurements

机译:惠斯勒波传播和天线的辐射电阻测量

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Whistler waves are a common feature of ionospheric and magnetospheric plasmas. While the linear behavior of these waves is generally well understood, a number of interesting observations indicate that much remains to be learned about the nonlinear characteristics of the mode. For example, in space, very low frequency (VLF) emissions triggered by whistler modes launched from ground-based transmitters have been observed. Emission is assumed to come from transverse currents formed by counterstreaming electrons that are phase bunched by the triggering signal. In the laboratory, it has been shown that with increasing amplitude of the driving signal applied to an antenna, the whistler mode radiation pattern forms a duct with diameter of the order of the parallel wavelength. The ducted waves were observed to propagate virtually undamped along the length of the plasma column. These observations have prompted an Naval Research Laboratory's (NRL) Space Physics Simulation Chamber study of whistler wave dynamics. The goals are to investigate whistler wave ducting, self-focusing, and amplification, and to study nonlinear whistler-plasma interactions.
机译:惠斯勒波是电离层和磁层的等离子体的共同特征。虽然这些波的线性行为通常已被很好地理解,但许多有趣的观察表明,关于该模式的非线性特性还有很多东西要学习。例如,在太空中,已经观察到由地面发射器发射的啸叫模式触发的极低频(VLF)发射。假定发射来自横向电流,该横向电流是由逆流电子形成的,该电子被触发信号相束。在实验室中,已经显示出,随着施加到天线的驱动信号的幅度增加,啸叫模式辐射图形成直径为平行波长量级的管道。观察到导管波实际上沿等离子体柱的长度无衰减地传播。这些观察促使海军研究实验室(NRL)的空间物理模拟分庭研究了哨声波动力学。目的是研究惠斯勒波导管,自聚焦和放大,并研究非线性惠斯勒-等离子体相互作用。

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