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Optical Beam Jitter Control

机译:光束抖动控制

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摘要

For several future imaging and communications spacecraft, a challenging area of technology development is the fine acquisition, tracking, and pointing (ATP) control of the spacecraft and its payload. For example, some spacecraft with large aperture(s) in the range of 10~30 m diameter requires a few arc-seconds accuracy, 10~15 nano-radians jitter, and a fast slewing rate to acquire the target. Furthermore these stringent requirements are at risk of great structure and control interactions. This paper we will focus on the control of optical beam jitter. A Laser Jitter Control (LJC) testbed has been constructed to test jitter algorithms. The testbed consists of two fast steering mirrors (FSM), three position sensing modules (PSM), one diode laser, and several beam splitters and mirrors, all on an isolated Newport optical bench. Jitter is injected with one FSM and the other FSM is used to control it. The jitter spectrum, representing the on-orbit spacecraft and beam jitter environment, contains not only narrow band noise due to rotating devices such as gyroscopes and reaction wheels but also broadband noise. The performance of a Wiener Filter - adaptive algorithm with ideal reference signal is established as the baseline for comparison of adaptive control methods in suppressing both broadband and narrowband disturbances. Specifically, the Least Mean Squares (LMS) approach and the Gradient Adaptive Lattice (GAL) approach are investigated during these experiments.
机译:对于未来的几种成像和通信航天器而言,技术发展的挑战领域是对航天器及其有效载荷的精细采集,跟踪和指向(ATP)控制。例如,某些直径在10〜30 m范围内的大孔径航天器需要几角秒的精度,10〜15纳弧度的抖动和快速的回​​转速率才能获得目标。此外,这些严格的要求具有很大的结构和控件交互作用的风险。本文我们将重点放在光束抖动的控制上。已经构建了激光抖动控制(LJC)测试平台来测试抖动算法。该测试台包括两个快速转向镜(FSM),三个位置传感模块(PSM),一个二极管激光器以及几个分束器和反射镜,所有这些均位于隔离的Newport光学平台上。抖动由一个FSM注入,而另一个FSM用于控制它。代表在轨航天器和波束抖动环境的抖动频谱不仅包含由于旋转设备(如陀螺仪和反作用轮)引起的窄带噪声,还包含宽带噪声。建立具有理想参考信号的Wiener滤波器-自适应算法的性能,作为比较抑制宽带和窄带干扰的自适应控制方法的基准。具体来说,在这些实验中研究了最小均方(LMS)方法和梯度自适应格(GAL)方法。

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