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Design of Multifunctional Mesosphere-Ionosphere Sounding System and Preliminary Results

机译:多功能中层-电离层测深系统设计及初步结果

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摘要

This paper describes a novel sounding system for which the functions of the medium frequency (MF) radar and the ionosonde are integrated on the same hardware platform and antenna structure, namely the middle atmosphere-ionosphere (MAI) system. Unlike the common MF radar, MAI system adopts the pseudo-random (PRN) phase-coded modulation technology, which breaks the limitation of the traditional monopulse mode. Through the pulse compression, only a small peak power is needed to achieve the signal-to-noise ratio (SNR) requirement. The excellent anti-jamming performance is also very suitable for the ionospheric sounding. One transmitting and six receiving modes are adopted for the MF sounding. While neglecting the structure of the T/R switches, the coupling interference between the transmitter and the receiver may also be avoided. Moreover, by employing a miniaturized antenna array composed of progressive-wave antennas for the MF receiving and ionospheric sounding, the MAI system takes account of the requirements of the inversion algorithms of MF radar and the large bandwidth need for the ionospheric sounding concurrently. Such an antenna structure can also greatly simplify the system structure and minimize the difficulty of deployment. The experiments verified the availability of the system scheme and its engineering application significance. Through further analysis of the sounding data, the wind field of the mesosphere, the electron density of D layer and electron density profile from layers E to F were obtained at the identical location. The capability of MAI system can play an important role in studying the interaction and coupling mechanism between the mesosphere and ionosphere.
机译:本文描述了一种新颖的探测系统,该系统将中频(MF)雷达和离子探空仪的功能集成在相同的硬件平台和天线结构上,即中层大气电离层(MAI)系统。与普通的中频雷达不同,MAI系统采用伪随机(PRN)相位编码调制技术,打破了传统单脉冲模式的局限性。通过脉冲压缩,只需要很小的峰值功率即可达到信噪比(SNR)的要求。出色的抗干扰性能也非常适合电离层探测。 MF探测采用一种​​发送和六种接收模式。在忽略T / R开关的结构的同时,还可以避免发射器和接收器之间的耦合干扰。此外,通过将由渐进波天线组成的小型天线阵列用于MF接收和电离层探测,MAI系统考虑了MF雷达反演算法的要求以及电离层探测同时需要的大带宽。这样的天线结构还可以大大简化系统结构并使部署难度最小化。实验证明了该系统方案的可行性及其工程应用意义。通过对测深数据的进一步分析,在同一位置获得了中层大气的风场,D层的电子密度和E至F层的电子密度分布。 MAI系统的功能在研究中层与电离层之间的相互作用和耦合机制方面可以发挥重要作用。

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