Design and analysis of an active optics system for a 4-m telescope mirror combining hydraulic and pneumatic supports

G. Lousberg, V. Moreau, J. Schumacher, M. Piérard, Aude Somja, P. Gloesener, C. Flebus
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引用次数: 4

Abstract

AMOS has developed a hybrid active optics system that combines hydraulic and pneumatic properties of actuators to support a 4-m primary mirror. The mirror is intended to be used in the Daniel K. Inouye Solar Telescope (DKIST, formerly the Advanced Technology Solar Telescope) that will be installed by the National Solar Observatory (NSO) atop the Haleakala volcano in Hawaii. The mirror support design is driven by the needs of (1) minimizing the support-induced mirror distortions under telescope operating conditions, (2) shaping the mirror surface to the desired profile, and (3) providing a high stiffness against wind loads. In order to fulfill these requirements, AMOS proposes an innovative support design that consist of 118 axial actuators and 24 lateral actuators. The axial support is based on coupled hydraulic and pneumatic actuators. The hydraulic part is a passive system whose main function is to support the mirror weight with a high stiffness. The pneumatic part is actively controlled so as to compensate for low-order wavefront aberrations that are generated by the mirror support itself or by any other elements in the telescope optical chain. The performances of the support and its adequacy with the requirements are assessed with the help of a comprehensive analysis loop involving finite-element, thermal and optical modellings.
液压与气动相结合的4米望远镜反射镜主动光学系统设计与分析
AMOS开发了一种混合主动光学系统,该系统结合了执行器的液压和气动特性来支持一个4米的主镜。该镜面将用于Daniel K. Inouye太阳望远镜(DKIST,前身为先进技术太阳望远镜),该望远镜将由美国国家太阳天文台(NSO)安装在夏威夷的哈雷阿卡拉火山上。镜面支撑设计是由以下需求驱动的:(1)在望远镜运行条件下,最大限度地减少支撑引起的镜面变形;(2)将镜面塑造成所需的轮廓;(3)提供抗风荷载的高刚度。为了满足这些要求,AMOS提出了一种创新的支撑设计,由118个轴向致动器和24个横向致动器组成。轴向支撑是基于耦合的液压和气动执行器。液压部分是一个被动系统,其主要功能是支撑具有高刚度的镜面重量。气动部分是主动控制的,以补偿由反射镜支架本身或望远镜光学链中的任何其他元件产生的低阶波前像差。在包括有限元、热学和光学模型在内的综合分析循环的帮助下,对支架的性能及其是否满足要求进行了评估。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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