缓解宽频带空间雷达电离层闪烁效应的波形分集方法

Edward Jones, Beth A. Jones, Robert J. Denton, Mark D. Barnell
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摘要

本文详细分析了电离层等离子体的不规则性对低频空间雷达系统宽带波形的影响。这项工作的主要目标是开发一种系统工程方法,利用波形分集来克服电离层对宽带波形通过电离层时性能的影响。第二个目标是提高对当地所有时间中低纬度电离层等离子体的物理认识,特别强调日落后的情况,作为实时确定电离层对甚高频/超高频和L/ s波段空间雷达系统影响的基础。实验数据是在三年多的时间里在多个地点收集的,包括马绍尔群岛夸贾林环礁的罗纳德·里根弹道导弹防御试验场。雷达目标包括轨道校准球(900公里处)。基于经验数据,首次确定了电离层对VHF/UHF和L/ s波段空间雷达的影响随时间、时间、频率和周期的变化规律。例如,总电子含量单位(TECU)为25的中等电离层闪烁导致UHF的距离误差约为9米,l波段的距离误差为4米,UHF的目标RCS变化为+/-5 dB, l波段的目标RCS变化为+/- 1 dB。这些结果正用于开发电离层减缓算法,并为太阳同步广域变化探测空间雷达进行经过验证的系统设计贸易研究。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A waveform diversity approach to mitigating ionosphere scintillation effects on wideband space radars
The results of a detailed study are presented which analyzed the impact of ionosphere plasma irregularities on wideband waveforms for low frequency space radar systems. The primary objective of this effort was to develop a systems engineering approach using waveform diversity to overcome the impact that the ionosphere has on the performance of a wideband waveform as it passes through the ionosphere. A secondary objective was to advance the physical understanding of mid- to low-latitude ionosphere plasmas at all local times, with special emphasis on post-sunset, as a basis for real-time determination of the impact of the ionosphere on VHF/UHF and L/S-Band space radar systems. Empirical data was collected over a three year period at multiple locations, including the Ronald Reagan Ballistic Missile Defense Test Site, Kwajalein Atoll, Marshall Islands. Radar targets included orbiting calibration spheres (at 900 km). For the first time, based on empirical data, the impact of the ionosphere on VHF/UHF and L/S-Band Space Radar as a function of time of day, time of year, frequency, and recurrent period was determined. For example, moderate ionosphere scintillation with a total electron content unit (TECU) of 25 resulted in a range error for UHF of about nine meters, and for L-Band four meters, and a variation in target RCS of +/-5 dB for UHF and +/- 1 dB for L-Band. These results are being used to develop ionosphere mitigation algorithms and perform validated system design trade studies for a sun-synchronous, wide area change detection space radar.
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