主镜像
波前
望远镜
菲索干涉仪
计算机科学
有源光学
试验台
变形镜
光学
自适应光学
执行机构
詹姆斯·韦伯太空望远镜
干涉测量
波前传感器
斯皮策太空望远镜
仪表(计算机编程)
物理
天文干涉仪
人工智能
操作系统
计算机网络
作者
Marie Laslandes,Emmanuel Hugot,Marc Ferrari,Claire Hourtoule,Christian Singer,Christophe Devilliers,Céline Lopez,Frédéric Chazallet
出处
期刊:Optical Engineering
[SPIE - International Society for Optical Engineering]
日期:2013-04-30
卷期号:52 (9): 091803-091803
被引量:43
标识
DOI:10.1117/1.oe.52.9.091803
摘要
The need for both high quality images and lightweight structures is one of the main drivers in space telescope design. An efficient wavefront control system will become mandatory in future large observatories, retaining performance while relaxing specifications in the global system's stability. We present the mirror actively deformed and regulated for applications in space project, which aims to demonstrate the applicability of active optics for future space instrumentation. It has led to the development of a 24-actuator, 90-mm-diameter active mirror, able to compensate for large lightweight primary mirror deformations in the telescope's exit pupil. The correcting system has been designed for expected wavefront errors from 3-m-class lightweight primary mirrors, while also taking into account constraints for space use. Finite element analysis allowed an optimization of the system in order to achieve a precision of correction better than 10 nm rms. A dedicated testbed has been designed to fully characterize the integrated system performance in representative operating conditions. It is composed of: a telescope simulator, an active correction loop, a point spread function imager, and a Fizeau interferometer. All conducted tests demonstrated the correcting mirror performance and has improved this technology maturity to a TRL4.
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