望远镜
光学
卡塞格伦反射镜
系外行星
光学望远镜
次镜
物理
詹姆斯·韦伯太空望远镜
主镜像
变形镜
斯皮策太空望远镜
基点
计算机科学
光学(聚焦)
拉莫斯特
有源光学
光学工程
反射望远镜
航空航天工程
窗口(计算)
红外望远镜
工程类
波前
超大望远镜
自适应光学
光路
刚度
作者
Christian Gaiotto,Paolo Chioetto,Carlo Bettanini,José A. Araiza-Durán,Umberto Barozzi,Lorenzo Barubiani,Andrea Bocchieri,Pasquale Bonfà,Daniele Brienza,Anna Brucalassi,Andrew Caldwell,Martin E. Caldwell,Fabio D’Anca,Paul Eccleston,Debora Ferruzzi,Manuele Gangi,Elisa Guerriero,Lorenzo Maddii Fabiani,G. Malaguti,G. Micela
摘要
Ariel (Atmospheric Remote-Sensing Infrared Exoplanet Large Survey) is ESA’s M4 mission within the “Cosmic Vision” program, set to launch in 2029. Its goal is to survey the atmospheres of known exoplanets using transit spectroscopy. The mission employs a 1-meter-class telescope that is optimized for spectroscopy in the 1.95 to 7.8 μm wavelength range, operating at cryogenic temperatures between 40 and 50 K. The Ariel Telescope features an off-axis, unobscured Cassegrain configuration, incorporating a parabolic recollimating tertiary mirror and a flat folding mirror that directs the output beam parallel to the optical bench. Additionally, the secondary mirror is mounted on a roto-translating stage to allow for adjustments during the mission. All mirrors and supporting structures are made from an aerospace-grade aluminium alloy, 6061-T651, chosen for its ease of manufacturing and thermalization. However, the material’s low stiffness presents unique challenges for integration and alignment. Aseries of simulations were conducted to analyse the telescope's alignment, with a specific focus on mechanical tolerances and their impact on the optical performance. The paper thoroughly describes the simulation setup, the methodology used to assess tolerance effects, and presents the resulting data, offering valuable guidance for optimizing telescope alignment and ensuring robust optical performance.
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