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The development of stacked core technology for the fabrication of deep lightweight UV-quality space mirrors

机译:用于制造深轻量级紫外线质量空间镜的叠层核心技术的发展

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The 2010 Decadal Survey stated that an advanced large-aperture ultraviolet, optical, near-infrared (UVOIR) telescope is required to enable the next generation of compelling astrophysics and exoplanet science; and, that present technology is not mature enough to affordably build and launch any potential UVOIR mission concept. Under Science and Technology funding, NASA's Marshall Space Flight Center (MSFC) and Exelis have developed a more cost effective process to make 4m class or larger monolithic spaceflight UV quality, low areal density, thermally and dynamically stable primary mirrors. A proof of concept 0.43m mirror was completed at Exelis optically tested at 250K at MSFC which demonstrated the ability for imaging out to 2.5 microns. The parameters and test results of this concept mirror are shown. The next phase of the program includes a 1.5m subscale mirror that will be optically and dynamically tested. The scale-up process will be discussed and the technology development path to a 4m mirror system by 2018 will be outlined.
机译:2010年的十年调查显示,需要先进的大口径紫外线,光学,近红外(UVOIR)望远镜,以实现下一代引人注目的天体物理学和系外行星科学。而且,目前的技术还不够成熟,无法以可承受的价格构建和发布任何潜在的UVOIR任务概念。在科学和技术的资助下,NASA的马歇尔太空飞行中心(MSFC)和Exelis开发了一种更具成本效益的工艺,以制造4m级或更大的整体式航天UV品质,低面密度,热和动态稳定的主反射镜。在Exelis完成了0.43m反射镜的概念验证,该反射镜在MSFC上进行了250K的光学测试,证明了能够成像到2.5微米的能力。显示了该概念镜的参数和测试结果。该程序的下一阶段包括一个1.5m的子刻度镜,将对其进行光学和动态测试。将讨论扩大规模的过程,并概述到2018年向4m反射镜系统发展的技术道路。

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