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A Time-Domain Impedance Probe for Fast Measurements of Electron Plasma Parameters in the Ionosphere

机译:一种时域阻抗探针,用于快速测量电离层中的电子等离子体参数

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A new time-domain impedance probe is presented in this paper. The new instrument is able to make measurements of absolute electron density and electron-neutral collision frequency in the ionosphere at temporal and spatial resolutions not previously attained. A single measurement is made in 100 mu s, which yields an instantaneous spatial resolution of 0.1 m for sounding rocket experiments. A prototype of this instrument was integrated into the payload of a NASA Undergraduate Student Instrument Program sounding rocket launched out of Wallops Island on March 1, 2016. Here, we describe the instrument, and present the data obtained from the sounding rocket experiment. A 6-V amplitude Gaussian derivative excitation was applied to a dipole probe structure, and the current through the probe terminals measured with a balanced active bridge circuit. The time-domain current response was sampled at 5 MS/s, at 12-bit resolution. In the course of the flight, the instrument measured a highly nonlinear response of the plasma because of the large input voltage signal applied. The linear theory cannot explain this response, which obscured interpretation of the data. As a result, we used time- and frequency-domain trend analysis to obtain the variation of electron density over the upleg and down-leg of the rocket trajectory. The obtained time and fast Fourier transform trends showed enhanced electron densities in the F layer, which confirmed that the instrument was able to measure the density variations during a significant portion of the flight.
机译:本文提出了一种新的时域阻抗探头。这款新仪器能够以前所未有的时空分辨率测量电离层中的绝对电子密度和电子中性碰撞频率。在100毫秒内进行一次测量,对于探空火箭实验,其瞬时空间分辨率为0.1 m。该仪器的原型已集成到2016年3月1日从瓦洛普斯岛发射的NASA本科学生仪器计划探空火箭的有效载荷中。在此,我们对仪器进行描述,并介绍从探空火箭实验获得的数据。对偶极探头结构施加了6V振幅的高斯微分激励,并使用平衡有源桥电路测量了流经探头端子的电流。时域电流响应以12位分辨率以5 MS / s采样。在飞行过程中,由于施加了较大的输入电压信号,该仪器测量出等离子体的高度非线性响应。线性理论无法解释这种响应,这使得对数据的解释变得模糊。结果,我们使用了时域和频域趋势分析来获得电子密度在火箭轨迹的上支和下支上的变化。所获得的时间和快速傅立叶变换趋势显示出F层中电子密度增加,这证实了该仪器能够在飞行的大部分时间内测量密度变化。

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