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Integration of mirror design with suspension system Using NASA's new mirror modeling software

机译:使用NASA新镜像建模软件集成镜像设计与悬架系统

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Advances in mirror fabrication are making very large space based telescopes possible. In many applications, only monolithic mirrors can meet the performance requirements. The existing and near-term planned heavy launch vehicles place a premium on lowest possible mass, and men available payload shroud sizes limit near term designs to 4 meter class mirrors. Practical 8 meter class and beyond designs could encourage planners to include larger shrouds, if it can be proven that such mirrors can be manufactured. These two factors, lower mass and larger mirrors, present the classic optimization problem. There is a practical upper limit to how large of a mirror can be supported by a purely kinematic mount system handling both operational and launch loads. This paper shows how the suspension system and mirror blank need to be designed simultaneously. We will also explore the concepts of auxiliary support systems which act only during launch and disengage on orbit. We will define required characteristics of these systems and show how they can substantially reduce the mirror mass.
机译:镜子制造的进步正在制造非常大的基于空间的望远镜。在许多应用中,只有单片镜可以满足性能要求。现有和近期计划的重型发动车辆在尽可能低的质量上放置溢价,男性有效载荷罩尺寸为4米级镜子近期设计。实用的8米类和超越设计可以鼓励规划者包括更大的护罩,如果可以证明可以制造这些镜子。这两个因素,较低的质量和较大的镜子,呈现了经典的优化问题。有一个实际的上限是如何通过处理操作和发射负载的纯粹运动安装系统来支持镜子的大量上限。本文显示了如何同时设计悬架系统和镜子空白。我们还将探讨辅助支持系统的概念,该系统仅在轨道上发射和脱离时起作用。我们将定义这些系统的所需特性,并显示它们如何大大减少镜子质量。

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