多镜自适应光学系统的模型预测控制

M. Glück, J. Pott, O. Sawodny
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引用次数: 10

摘要

在过去的几十年里,人们计划并建造了大型望远镜来探索宇宙中比以往任何时候都更微弱的物体。目前,世界上最大的光学波长望远镜——超大望远镜(ELT),其主镜直径为39米。为了减少望远镜的总重量,并且由于其巨大的尺寸,光学元件被安装在对风激励非常敏感的轻质结构上。因此,在下一代ELT的设计中,必须考虑望远镜光学及其控制,并对其进行良好的振动补偿。为了达到ELT的衍射极限,在其光路上安装了可变形反射镜和用于校正的平面倾斜反射镜。由于大气湍流和结构振动的影响,补偿镜可以达到其行程和频率的限制。如果不考虑控制系统的这些限制,望远镜仪器就不能完全达到其最佳性能。因此,我们提出了一种基于模型预测控制(MPC)的解决方案,该方案可以在给定约束条件下以最优方式控制反射镜。本文给出了自适应光学系统的模型、MPC控制器的设计和积分控制的概念。因此,当考虑输入约束时,MPC控制器可以在更大的频率范围内减小残余倾斜误差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Model Predictive Control of Multi-Mirror Adaptive Optics Systems
In the last decades, large telescopes have been planned and built to explore the universe for fainter objects than ever before. Presently, the largest telescope for optical wavelengths, the Extremely Large Telescope (ELT), is constructed with a primary mirror of 39 m diameter. In order to reduce the total weight of the telescope and due to the enormous size, the optics are mounted on lightweight constructions, which are very sensitive to wind excitations. Therefore, telescope optics and their control have to be considered in the design of the next generation ELT's, where a good vibration compensation is required. To achieve the diffraction limit of the ELT, its optical path is equipped with a deformable mirror and a plane tiptilt mirror for correction. Due to the atmospheric turbulences and structural vibrations, the compensation mirrors can reach their stroke and frequency limitations. Without considering these limitations in the control system the telescope instruments cannot fully reach its optimal performance. Therefore, we propose a solution based on Model Predictive Control (MPC), which can control the mirrors in an optimal way under given constraints. In this paper a model of the Adaptive Optics system, the MPC controller design and an integral control concept for comparison are presented. As a result the residual tip-tilt error can be reduced over a larger frequency range with an MPC controller when considering input constraints.
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