首页> 外文会议>Advanced Wavefront Control: Methods, Devices, and Applications V; Proceedings of SPIE-The International Society for Optical Engineering; vol.6711 >Numerical Analysis of Hybrid Adaptive Optics System for Correcting Beacon Anisoplanatism and Thermal Blooming
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Numerical Analysis of Hybrid Adaptive Optics System for Correcting Beacon Anisoplanatism and Thermal Blooming

机译:混合自适应光学系统校正信标各向异性和热起霜的数值分析

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A concept of a Hybrid Wavefront-based Stochastic Parallel Gradient Decent (WSPGD) Adaptive Optics (AO) system for correcting the combined effects of Beacon Anisoplanatism and Thermal Blooming is introduced. This system integrates a conventional phase conjugate (PC) AO system with a WSPGD AO system. It uses on-axis wavefront measurements of a laser return from an extended beacon to generate initial deformable mirror (DM) commands. Since high frequency phase components are removed from the wavefront of a laser return by a low-pass filter effect of an extended beacon, the system also uses off-axis wavefront measurements to provide feedback for a multi-dithering beam control algorithm in order to generate additional DM commands that account for those missing high frequency phase components. Performance of the Hybrid WSPGD AO system was evaluated in simulation using a wave optics code. Numerical analysis was performed for two tactical scenarios that included ranges of L = 2 km and L = 20 km, ratio of aperture diameter to Fried parameter, D/r_0, of up to 15, ratio of beam spot size at the target to isoplanatic angle, θ_B/θ_0, of up to 40, and general distortion number characterizing the strength of Thermal Blooming, N_d = 50, 75, and 100. A line-of-sight in the corrected beam was stabilized using a target-plane tracker. The simulation results reveal that the Hybrid WSPGD AO system can efficiently correct the effects of Beacon Anisoplanatism and Thermal Blooming, providing improved compensation of Thermal Blooming in the presence of strong turbulence. Simulation results also indicate that the Hybrid WSPGD AO system outperforms a conventional PC AO system, increasing the Strehl ratio by up to 300% in less than 50 iterations. A follow-on laboratory demonstration performed under a separate program confirmed our theoretical predictions.
机译:介绍了一种基于混合波前的随机平行梯度体面(WSPGD)自适应光学(AO)系统的概念,用于校正信标各向异性和热散发的综合影响。该系统将常规相位共轭(PC)AO系统与WSPGD AO系统集成在一起。它使用从扩展信标返回的激光的同轴波前测量来生成初始可变形反射镜(DM)命令。由于通过扩展信标的低通滤波器效应从激光器回波的波前去除了高频相位分量,因此该系统还使用离轴波前测量来为多抖动光束控制算法提供反馈,以便生成额外的DM命令,用于解决那些缺少高频相位分量的问题。混合WSPGD AO系统的性能在仿真中使用了波动光学代码。对两种战术情景进行了数值分析,包括L = 2 km和L = 20 km的范围,孔径直径与Fried参数的比率D / r_0最高为15,在目标处的束斑尺寸与等平面角的比率,θ_B/θ_0,最大为40,表征热散强度的一般变形数N_d = 50、75和100。使用目标平面跟踪器稳定了校正光束的视线。仿真结果表明,混合式WSPGD AO系统可以有效地校正信标各向异性和热起霜的影响,在存在强湍流的情况下可以改善热起霜的补偿。仿真结果还表明,混合WSPGD AO系统优于常规PC AO系统,在不到50次迭代中将Strehl比率提高了300%。在另一个程序下进行的后续实验室演示证实了我们的理论预测。

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