调频共频雷达用高灵敏度固定调谐直接转换接收机

M. Inggs, R. Geschke, J. Coetser, D. O’Hagan
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引用次数: 6

摘要

日益拥挤的电磁频谱正促使雷达运营商和监管机构考虑基于无源雷达共体形式的传感器,即使用广播和数据传输,通过仅接收功能为目标检测提供照明。我们对调频广播频段(88至108兆赫)的兴趣是在发展中国家使用,以协助空中交通管理(ATM),需要低成本的解决方案。为此,我们研究了固定调谐的直接转换接收器。共控雷达(CR)依赖于不合作的发射机信号(参考)与包含参考的多普勒偏移版本的信号相互关联,由于目标的运动,以及杂波。目标回波信号功率比参考信号低60 ~ 100db以上,接收机内可能产生的任何其他杂散信号都会降低系统的整体灵敏度。直接采样接收器虽然在系统成本方面很有吸引力,但必须仔细设计以保持动态范围。本文认为固定频率接收器系统适合用于ATM功能的CR,这意味着使用压电技术的超窄带滤波器非常适合确保所使用的每个频率的频谱纯度。在本文中,我们演示了这样一个系统的操作,展示了主要贡献的杂散信号的来源,以及窄带滤波器如何提高接收机的性能。这是通过理论、模拟和测量来完成的,包括在超过300公里的双基地距离上进行飞机探测的现场试验。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
High sensitivity fixed tuned direct conversion receiver for FM band commensal radar
Growing congestion of the EM Spectrum is pushing radar operators and regulators to consider sensors based on the Commensal form of Passive Radar i.e. using broadcast and data transmissions, to provide illumination for target detection by a receive only function. Our interest in the FM Broadcast Band (88 to 108 MHz) for utilisation in the Developing World to assist Air Traffic Management (ATM) requires low cost solutions. To this end, we have examined fixed tuned, direct conversion receivers. Commensal Radar (CR) relies on cross correlating the uncooperative transmitter signal (reference) with a signal that contains Doppler shifted versions of the reference, due to motion of the targets, as well as clutter. The target echo signal power is 60 to more than 100 dB lower than that of the reference signal, and any other spurious signals that might be generated in the receiver will reduce overall system sensitivity. A direct sampling receiver, while appealing in terms of system cost, must be carefully designed to preserve dynamic range. This paper recognises that a fixed frequency receiver system is suitable for a CR used for the ATM function, and this means that ultra narrowband filters using piezo-electric technology are very suitable to ensure spectral purity of each frequency utilised. In this paper, we demonstrate the operation of such a system, after showing where the major contributions to spurious signals originate, and how the narrowband filter improves receiver performance. This is done by means of theory, simulation and measurement, including field trials with aircraft detection at bistatic ranges of more than 300 km.
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