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Optical BEAMTAP beam-forming and jammer-nulling system for broadband phased-array antennas

机译:宽带相控阵天线的光学BEAMTAP波束形成和干扰消除系统

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We present an approach to receive-mode broadband beam forming and jammer nulling for large adaptive antenna arrays as well as its efficient and compact optical implementation. This broadband efficient adaptive method for true-time-delay array processing (BEAMTAP) algorithm decreases the number of tapped delay lines required for processing an N-element phased-array antenna from N to only 2, producing an enormous savings in delay-line hardware (especially for large broadband arrays) while still providing the full NM degrees of freedom of a conventional N-element time-delay-and-sum beam former that requires N tapped delay lines with M taps each. This allows the system to adapt fully and optimally to an arbitrarily complex spatiotemporal signal environment that can contain broadband signals of interest, as well as interference sources and narrow-band and broadband jammers—all of which can arrive from arbitrary angles onto an arbitrarily shaped array—thus enabling a variety of applications in radar, sonar, and communication. This algorithm is an excellent match with the capabilities of radio frequency (rf) photonic systems, as it uses a coherent optically modulated fiber-optic feed network, gratings in a photorefractive crystal as adaptive weights, a traveling-wave detector for generating time delay, and an acousto-optic device to control weight adaptation. Because the number of available adaptive coefficients in a photorefractive crystal is as large as 10~(9), these photonic systems can adaptively control arbitrarily large one- or two-dimensional antenna arrays that are well beyond the capabilities of conventional rf and real-time digital signal processing techniques or alternative photonic techniques.
机译:我们提出了一种用于大型自适应天线阵列的接收模式宽带波束形成和干扰归零的方法,以及其高效紧凑的光学实现方式。这种用于实时延迟阵列处理(BEAMTAP)算法的宽带高效自适应方法将处理N元素相控阵天线所需的抽头延迟线的数量从N减少到仅2条,从而大大节省了延迟线硬件(特别是对于大型宽带阵列),同时仍提供常规N元素时和和波束形成器的完整NM自由度,该波束形成器需要N个抽头的延迟线,每条M抽头。这使系统能够完全最佳地适应可能包含感兴趣的宽带信号以及干扰源以及窄带和宽带干扰器的任意复杂的时空信号环境,所有这些信号都可以从任意角度到达任意形状的阵列从而在雷达,声纳和通信中实现了多种应用。该算法与射频(rf)光子系统的功能非常匹配,因为它使用相干的光学调制光纤馈电网络,光折射晶体中的光栅作为自适应权重,行波检测器以产生时间延迟,以及控制体重适应的声光装置。由于光折射晶体中可用的自适应系数的数量高达10〜(9),因此这些光子系统可以自适应地控制任意大的一维或二维天线阵列,这远远超出了常规射频和实时技术的能力。数字信号处理技术或替代性光子技术。

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