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A phase-control approach for a large-element coherent microwave power uplink system

机译:大元素相干微波功率上行链路系统的相位控制方法

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Signal combining efficiencies of 98% have been achieved on low-Earth orbiting (LEO) debris with phase-locking of time-overlapped radar pulses from a two-element phased-array consisting of two 34-m beam waveguide steerable paraboloid antennas separated by 204 m. The uplink arraying at 7.19 GHz has been achieved for tracks from about 10/spl deg/ elevation at signal rise to 4/spl deg/ elevation at signal set under varying weather conditions (e.g., hail failing on one antenna). The typical root mean square (RMS) phase error for two coherent 100-/spl mu/s 50-Hz 5-kW peak pulses reflected from LEO debris with signal-to-noise ratio (SNR) <23 dB is less than 4/spl deg/. The phase-control system design, methods of calibration, and details of the design control table of phasing error contributors are presented and discussed. Based upon the measured performance, we predict that transmitting antennas for the Deep Space Network (DSN) could be coherently arrayed for up to hours at a time given static phase error calibrations on exo-atmospheric debris. Applications for this technique include low-cost implementation of high-power microwave transmitters for deep-space communication and radars for exploration of other planets and as part of a defense against comets and asteroids.
机译:在低地球轨道(LEO)碎片上实现了信号合并效率达到了98%,该信号来自两个单元相控阵的时间重叠的雷达脉冲的相位锁定,该相控阵由两个34 m波束波导可控抛物面天线组成,相隔204米在变化的天气条件下(例如,一根天线上的冰雹失效),已经实现了从信号上升时的大约10 / spl deg /仰角到信号设定时的4 / spl度/仰角的轨道的7.19 GHz上行链路阵列。从LEO碎片反射的两个相干100- / spl mu / s 50-Hz 5kW峰值脉冲的典型均方根(RMS)相位误差小于23 dB,信噪比(SNR)小于4 / spl度/。介绍并讨论了相位控制系统的设计,校准方法以及定相误差贡献者设计控制表的详细信息。根据测得的性能,我们预测深空网络(DSN)的发射天线在给定大气外碎片的静态相位误差校准的情况下,一次可以相干地排列长达数小时。该技术的应用包括低成本实施用于深空通信的高功率微波发射器和用于探测其他行星的雷达,以及作为防御彗星和小行星的一部分。

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