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3D Measurement Simulation and Relative Pointing Error Verification of the Telescope Mount Assembly Subsystem for the Large Synoptic Survey Telescope

机译:大型天气观测望远镜的望远镜安装组件子系统的3D测量仿真和相对指向误差验证

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摘要

An engineering validation of a large optical telescope consists of executing major performing tests at the subsystem level to verify the overall engineering performance of the observatory. Thus, the relative pointing error verification of the telescope mount assembly subsystem is of special interest to guarantee the absolute pointing performance of the large synoptic survey telescope. This paper presents a new verification method for the relative pointing error assessment of the telescope mount assembly, based on laser tracker technology and several fiducial points fixed to the floor. Monte-Carlo-based simulation results show that the presented methodology is fit for purpose, even if floor movement occurs due to temperature variation during the measurement acquisition process. A further research about laser tracker technology integration into the telescope structure may suggest that such laser tracker technology could be permanently installed in the telescope in order to provide an active alignment system that aims to detect and correct possible misalignment between mirrors or to provide the required mirror positioning verification accuracy after maintenance activities. The obtained results show that two on-board laser tracker systems combined with eight measurement targets could result in measurement uncertainties that are better than 1 arcsec, which would provide a reliable built-in metrology tool for large telescopes.
机译:大型光学望远镜的工程验证包括在子系统级别执行主要性能测试,以验证天文台的整体工程性能。因此,为了确保大型天气观测望远镜的绝对指向性能,望远镜安装组件子系统的相对指向误差验证尤为重要。本文提出了一种新的验证方法,该方法基于激光跟踪技术和固定在地板上的几个基准点,用于评估望远镜安装组件的相对指向误差。基于蒙特卡洛的仿真结果表明,即使地板移动是由于在测量采集过程中温度变化而发生的,所提出的方法仍适用。有关将激光跟踪器技术集成到望远镜结构中的进一步研究可能表明,可以将这种激光跟踪器技术永久安装在望远镜中,以提供一个主动对准系统,该系统旨在检测和校正反射镜之间可能的未对准或提供所需的反射镜维护活动后的定位验证准确性。获得的结果表明,两个车载激光跟踪器系统与八个测量目标相结合,可能导致测量不确定度优于1 arcsec,这将为大型望远镜提供可靠的内置度量工具。

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