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Laboratory Demonstration of Wavefront Based Stochastic Parallel Gradient Descent Adaptive Optics System

机译:基于波前的随机平行梯度下降自适应光学系统的实验室演示

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A laboratory demonstration of two novel tactical beam control methods for correcting the effects of strong turbulence including Beacon Anisoplanatism, and the combined effects of Beacon Anisoplanatism and Thermal Blooming, respectively, were performed in SAIC's Tactical Beam Control Test-Bed. Both systems were tested with ratio of aperture diameter to Fried parameter, D/r_0, of up to 7, and ratio of beam spot size at the target to isoplanatic angle, θ_b/θ_o, of up to 10. The first method was implemented in a Wavefront-based Stochastic Parallel Gradient Decent (WSPGD) adaptive optics (AO) system, which uses an off-axis wavefront sensor (WFS) to provide feedback for a multi-dithering beam control algorithm. The second method was implemented in a Hybrid WSPGD AO system, which incorporates the WSPGD AO system with a conventional Phase Conjugate (PC) AO system. The Hybrid system uses an on-axis WFS to generate initial deformable mirror commands and an off-axis WFS to generate additional commands that account for the high frequency phase components removed from the wavefront of a laser return by Beacon Anisoplanatism. We developed a low speed PC-based WSPGD controller, implemented designs of the WSPGD and Hybrid WSPGD AO systems in SAIC's Test-Bed, and tested both AO systems in static and dynamic turbulence over a wide range of turbulence conditions. A target-plane tracker was used to stabilize the line-of-sight in the AO corrected beam. Test results show that the WSPGD AO system efficiently compensates the effects of Beacon Anisoplanatism for both static and dynamic turbulence, providing a mean performance gain of 1.8 averaged over multiple turbulent realizations. We also found in testing that the Hybrid WSPGD system efficiently compensates for Beacon Anisoplanatism in the presence of Thermal Blooming - providing improved compensation for both Thermal Blooming and turbulence. In the presence of strong Beacon Anisoplanatism with θ_B/θ_o of up to 10, the maximum performance gain is 4.9 and the mean performance gain for multiple turbulence realizations is 2.1.
机译:在上汽的战术波束控制试验台上,进行了两种新颖的战术波束控制方法的实验室演示,这些方法用于纠正强湍流的影响,包括信标各向异性和plan火各向异性,以及信标各向异性和热起霜的综合影响。两种系统的孔径直径与Fried参数的比率D / r_0的比值至多为7,并且目标点的束斑尺寸与等平面角的角度θ_b/θ_o的比值至多为10。一个基于波前的随机平行渐变体面(WSPGD)自适应光学(AO)系统,该系统使用离轴波前传感器(WFS)为多抖动光束控制算法提供反馈。第二种方法是在混合WSPGD AO系统中实现的,该系统将WSPGD AO系统与常规的相位共轭(PC)AO系统结合在一起。混合系统使用轴上WFS生成初始可变形镜像命令,并使用轴外WFS生成其他命令,这些命令说明了由于信标各向异性而从激光回波的波前去除的高频相位分量。我们开发了一种基于PC的低速WSPGD控制器,在SAIC的Test-Bed上实现了WSPGD和Hybrid WSPGD AO系统的设计,并在各种湍流条件下对AO系统进行了静态和动态湍流测试。使用目标平面跟踪器来稳定AO校正光束的视线。测试结果表明,WSPGD AO系统有效地补偿了信标异向性对静态和动态湍流的影响,在多个湍流实现中提供平均1.8的平均性能增益。我们还在测试中发现,在存在热散发的情况下,Hybrid WSPGD系统可以有效地补偿信标异向性-为热散发和湍流提供更好的补偿。在强信标各向异性(θ_B/θ_o高达10)的情况下,最大性能增益为4.9,多次湍流实现的平均性能增益为2.1。

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