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Technology for quiet optical systems in space

机译:太空中安静的光学系统技术

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Abstract: The Micro-Precision Control/Structure Interaction (CSI) program at JPL is chartered to develop the structures and control technology needed for sub-micron level stabilization of future optical space systems. The extreme dimensional stability required for such systems derives from the need to maintain the alignment and figure of critical optical elements to a small fraction (typically 1/20th to 1/50th) of the wavelength of detected radiation (about 0.5 micron for visible light, 0.1 micron for ultra-violet light). This $lambda@/50 requirement is common to a broad class of optical systems including filled aperture telescopes (with monolithic or segmented primary mirrors), sparse aperture telescopes, and optical interferometers. The challenge for CSI arises when such systems become large, with spatially distributed optical elements mounted on lightweight, flexible structure. This paper will present an overview of the approach that is being taken by JPL's CSI program to address this challenge. In particular the paper will discuss the application of CSI technology to a specific example of a future large optical space mission. Experimental demonstration of the technology on ground-based testbeds will also be presented.!31
机译:摘要:JPL的微精密控制/结构交互(CSI)程序被特许开发用于开发未来光学空间系统的亚微米级稳定所需的结构和控制技术。此类系统需要极高的尺寸稳定性,这是因为需要将关键光学元件的对准和图形保持在检测到的辐射波长的一小部分(通常为1/20至1/50)(可见光约为0.5微米,紫外线为0.1微米)。 λ@ / 50的要求对于广泛的光学系统来说是常见的,包括填充孔径的望远镜(带有单片或分段主镜),稀疏孔径的望远镜和光学干涉仪。当此类系统变得越来越大,并且将空间分布的光学元件安装在轻巧,灵活的结构上时,CSI面临的挑战就出现了。本文将概述JPL的CSI程序正在采用的方法来应对这一挑战。特别是,本文将讨论CSI技术在未来大型光学太空任务的特定示例中的应用。该技术还将在地面试验台上进行实验演示!! 31

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