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MirrorSAR: A fractionated space radar for bistatic, multistatic and high-resolution wide-swath SAR imaging

机译:MirrorSAR:用于双基地,多基地和高分辨率宽波段SAR成像的分级空间雷达

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This paper introduces the concept of a fractionated MirrorSAR which is based on a set of mutually separated transmitter and receiver satellites. As opposed to previously published bi- and multistatic SAR systems, the receiver satellites are considerably simplified, as their main functionality is reduced to a kind of microwave mirror (or space transponder) which routes the radar echoes towards the transmitter. The forwarded radar signals are then coherently demodulated within the transmitter by using the same oscillator that had been used for radar pulse generation. This avoids the necessity of a bidirectional phase synchronization link as currently employed in TanDEM-X. Since the needs for fully equipped radar receivers, on-board memory and downlink are also overcome, the weight and costs of the receiver satellites can be significantly reduced. This allows for a scaling of their number without cost explosion, thereby paving the way for novel applications like multi-baseline SAR interferometry and single-pass tomography. Several additional opportunities make the MirrorSAR concept even more attractive. First, the separation of the transmitter and receiver front-ends reduces not only RF losses by avoiding switches and circulators, but it may also lower the peak power in the transmitter satellite by employing a frequency-modulated continuous wave (FMCW) illumination. This simplifies the design of the high-power amplifier and increases its efficiency. Second, the opportunity for continuous radar data collection enables new modes for the imaging of ultra-wide swaths with very high resolution, thereby overcoming an inherent limitation of conventional monostatic SAR systems. Third, the joint availability of all receiver signals in a centralized node offers new opportunities for efficient data compression, as the multistatic radar signals from close satellite formations are characterized by a high degree of mutual redundancy. Fourth, the use of a sufficiently separated transmitter satellite can avoid the risk for mutual illumination, which challenges the design and operation of fully-active multistatic SAR systems. Further advantages arise from the scalability and reconfigurability, which support new redundancy concepts and pave at the same time the way to new modes like MIMO-SAR tomography.
机译:本文介绍了基于一组相互分离的发射器和接收器卫星的分段MirrorSAR的概念。与以前发布的双基地和多基地SAR系统相反,接收器卫星被大大简化了,因为其主要功能被简化为一种微波反射镜(或空间应答器),该微波反射镜将雷达回波引向发射器。然后,使用与产生雷达脉冲相同的振荡器,在发射机内对转发的雷达信号进行相干解调。这避免了TanDEM-X中当前使用的双向相位同步链路的必要性。由于还克服了对装备齐全的雷达接收器,机载存储器和下行链路的需求,因此可以显着降低接收器卫星的重量和成本。这样就可以在不增加成本的情况下扩展其数量,从而为诸如多基线SAR干涉测量和单程断层扫描等新颖应用铺平了道路。其他一些机会使MirrorSAR概念更具吸引力。首先,发射器和接收器前端的分离不仅避免了开关和循环器,从而降低了RF损耗,而且还通过采用调频连续波(FMCW)照明降低了发射器卫星中的峰值功率。这简化了大功率放大器的设计并提高了效率。其次,连续雷达数据收集的机会为高分辨率的超宽幅带成像提供了新模式,从而克服了传统单基地SAR系统的固有局限性。第三,集中节点中所有接收器信号的联合可用性为有效的数据压缩提供了新的机会,因为来自紧密卫星编队的多静态雷达信号具有高度的相互冗余性。第四,使用充分分离的发射机卫星可以避免相互照射的风险,这给全有源多静态SAR系统的设计和运行带来了挑战。可扩展性和可重配置性进一步带来了优势,这些可扩展性和可重配置性支持新的冗余概念,并同时为MIMO-SAR层析成像等新模式铺平了道路。

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