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首页> 外文期刊>Applied optics >Spatio-temporal operator formalism for holographic recording and diffraction in a photorefractive-based true-time-delay phased-array processor
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Spatio-temporal operator formalism for holographic recording and diffraction in a photorefractive-based true-time-delay phased-array processor

机译:在基于光折射的真实时间延迟相控阵处理器中进行全息记录和衍射的时空算子形式

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We present a spatio-temporal operator formalism and beam propagation simulations that describe the broadband efficient adaptive method for a true-time-delay array processing (BEAMTAP) algorithm for an optical beamformer by use of a photorefractive crystal. The optical system consists of a tapped-delay line implemented with an acoustooptic Bragg cell, an accumulating scrolling time-delay detector achieved with a traveling-fringes detector, and a photorefractive crystal to store the adaptive spatio-temporal weights as volume holographic gratings. In this analysis, linear shift-invariant integral operators are used to describe the propagation, interference, grating accumulation, and volume holographic diffraction of the spatio-temporally modulated optical fields in the system to compute the adaptive array processing operation. In addition, it is shown that the random fluctuation in time and phase delays of the optically modulated and transmitted array signals produced by fiber perturbations (temperature fluctuations, vibrations, or bending) are dynamically compensated for through the process of holographic wavefront reconstruction as a byproduct of the adaptive beam-forming and jammer-excision operation. The complexity of the cascaded spatial-temporal integrals describing the holographic formation, and subsequent readout processes, is shown to collapse to a simple imaging condition through standard operator manipulation. We also present spatio-temporal beam propagation simulation results as an illustrative demonstration of our analysis and the operation of a BEAMTAP beamformer.
机译:我们提出了一种时空算子形式主义和光束传播模拟,它们描述了一种使用光折射晶体对光束形成器进行实时延迟阵列处理(BEAMTAP)算法的宽带有效自适应方法。该光学系统由一个带声光布拉格单元的抽头延迟线,一个由行进条纹检测器实现的累积滚动式时延检测器以及一个光折射晶体组成,该晶体将自适应时空权重存储为体积全息光栅。在此分析中,使用线性位移不变积分算子来描述系统中时空调制光场的传播,干涉,光栅累积和体积全息衍射,以计算自适应阵列处理操作。此外,还表明,通过全息波前重建过程作为副产品,可以动态补偿由光纤扰动产生的光调制和传输阵列信号的时间和相位延迟的随机波动(温度波动,振动或弯曲)。自适应波束形成和干扰消除操作描述全息形成和随后的读出过程的级联的时空积分的复杂性通过标准的操作员操作已崩溃为简单的成像条件。我们还提出了时空波束传播模拟结果,作为对我们的分析和BEAMTAP波束形成器操作的说明性演示。

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    《Applied optics 》 |2003年第26期| 共17页
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