Changchun Institute of Optics, Fine Mechanics and Physics, Chinese Academy of Sciences, Changchun 130033, China.
Chinese Academy of Sciences Key Laboratory of On-Orbit Manufacturing and Integration for Space Optics System, Changchun 130033, China.
Sensors (Basel). 2023 May 12;23(10):4705. doi: 10.3390/s23104705.
Ellipticity performance of space telescopes is important for exploration of dark matter. However, traditional on-orbit active optical alignment of space telescopes often takes "minimum wavefront error across the field of view" as the correction goal, and the ellipticity performance after correcting the wave aberration is not optimal. This paper proposes an active optical alignment strategy to achieve optimal ellipticity performance. Based on the framework of nodal aberration theory (NAT), the aberration field distribution corresponding to the optimal full field-of-view ellipticity is determined using global optimization. The degrees of freedom (DOFs) of the secondary mirror and the folded flat mirror are taken as the compensation DOFs to achieve the optimal ellipticity performance. Some valuable insights into aberration field characteristics corresponding to optimal ellipticity performance are presented. This work lays a basis for the correction of ellipticity for complicated optical systems.
空间望远镜的像旋性能对于暗物质的探索非常重要。然而,传统的空间望远镜在轨主动光学对准通常以“视场中最小波前误差”作为校正目标,并且校正波像差后的像旋性能并不是最优的。本文提出了一种主动光学对准策略,以实现最优的像旋性能。基于节点像差理论(NAT)的框架,使用全局优化确定对应于最优全视场像旋的像差场分布。采用次镜和折叠平面镜的自由度(DOFs)作为补偿 DOFs,以实现最优的像旋性能。本文提出了一些对应于最优像旋性能的像差场特征的有价值的见解。这项工作为复杂光学系统的像旋校正奠定了基础。