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Thermal analysis of the LLR optical telescope tube assembly based in Hartebeesthoek Radio Astronomy Observatory

机译:基于Hartebeesthoek射电天文台的LLR光学望远镜管组件的热分析

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摘要

The Hartebeesthoek Radio Astronomy Observatory of South Africa is currently developing a lunar laser ranger (LLR) system based on a one metre aperture telescope in collaboration with National Aeronautics and Space Administration and the Observatoire de la Côte d’Azur. This LLR will be an addition to a limited list of operating LLR stations globally and it is expected to achieve sub-centimetre range precision to the Moon. Key to this expectation including the overall telescope operational performance is thermal analysis of the telescope structure, based on the thermal properties of component materials and their interaction with the environment through conventional heat transfer mechanisms. This paper presents transient thermal simulation results of the telescope’s optical tube and one metre primary mirror in terms of thermal variations and consequent structural deformations. The results indicate that on a non-windy, cloud-free and winter day, the temperature gradients on the structure could be within 1 °C with respect to the temporal ambient air temperatures at the site when these are between 9 and 23 °C. Furthermore, these gradients were coupled with thermally-induced total deformations that vary between 2.9 and 40.7 μm of the assembled telescope components. In overall, these findings suggest that both the tube and especially the mirror may respond very slowly to ambient temperatures; however, correcting for structural thermal variations is imperative in maximizing the pointing accuracy of the telescope thereby increasing the chance being on-target with the retroreflectors located on the Moon surface.
机译:南非Hartebeesthoek射电天文台目前正在与国家航空航天局和蔚蓝海岸天文台合作,开发基于一米孔径望远镜的月球激光测距仪(LLR)系统。该LLR将在全球有限的运行中LLR电台列表中添加,并有望达到月球以厘米为单位的距离精度。包括整体望远镜运行性能在内的这一期望的关键是对望远镜结构的热分析,该分析基于组件材料的热特性及其通过常规传热机制与环境的相互作用。本文从热变化和随之而来的结构变形方面介绍了望远镜的光学管和一米主镜的瞬态热模拟结果。结果表明,在无风,无云和冬季的情况下,当温度在9至23°C之间时,结构上的温度梯度可能会相对于现场的临时环境温度在1°C以内。此外,这些梯度与热致总变形有关,该总变形在组装后的望远镜组件的2.9至40.7μm之间变化。总的来说,这些发现表明,管子,特别是镜子,对环境温度的响应都可能非常缓慢。但是,要使望远镜的指向精度最大化,必须校正结构的热变化,从而增加位于月球表面的后向反射镜对准目标的机会。

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