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Real-time holographic compensation of large optics for space deployment

机译:用于空间部署的大型光学器件的实时全息补偿

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Abstract: Large deployable space-based optical systems will likely require complex structure position controls in conjunction with an adaptive optic to maintain optical tolerances necessary for near diffraction-limited performance. A real- time holographic (RTH) compensation system can greatly reduce the requirements and complexity of the position control system and enable the use of novel or imperfect optical components for large mirror surfaces. A hologram of the distorted primary is recorded with a local beacon at 532 nm (approximately 100 nJ/exposure) on an optically addressed spatial light modulator and transferred as a phase grating to a ferroelectric liquid crystal layer. The hologram is played back with target light containing the same optical distortion. A corrected image is obtained in the conjugate diffracted order where the phase of the optical distortion is subtracted from the distorted image. We report recent test results and analysis of a RTH-compensated deformed mirror of 0.75 m diameter. The short exposure hologram is recorded at video frequencies (30 Hz) at bandwidths up to 5 kHz. Correction for tens of waves of static and dynamic optical distortions including mechanical and thermal warp, mechanical vibration, and air turbulence are shown for monochromatic (532 nm) and broadband (532 $POM 40 nm) illuminated targets.!10
机译:摘要:大型可部署的天基光学系统可能需要复杂的结构位置控制以及自适应光学器件,以维持接近衍射极限性能所需的光学公差。实时全息(RTH)补偿系统可以大大降低位置控制系统的要求和复杂性,并可以将新颖的或不完美的光学组件用于大镜面。在光学寻址的空间光调制器上,用本地信标在532 nm(大约100 nJ /曝光)下记录失真的原边全息图,并将其作为相位光栅转移到铁电液晶层上。使用包含相同光学畸变的目标光播放全息图。以共轭衍射顺序获得校正后的图像,其中从畸变图像中减去光学畸变的相位。我们报告了最近的测试结果,并对直径为0.75 m的RTH补偿变形镜进行了分析。短时曝光全息图以视频频率(30 Hz)记录,带宽最高为5 kHz。显示了单色(532 nm)和宽带(532×POM 40 nm)照明目标的数十次静态和动态光学畸变波的校正,包括机械和热翘曲,机械振动和空气湍流。!10

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