研究目的
To present a new verification method for the relative pointing error assessment of the telescope mount assembly for the Large Synoptic Survey Telescope, based on laser tracker technology and fiducial points fixed to the floor.
研究成果
The presented methodology is compatible with the RPE requirements, limited to 50 arcsec at a 95% confidence level. Simulation 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, providing a reliable built-in metrology tool for large telescopes.
研究不足
The simulation model only considered temperature for the floor dimensional drift assessment. The effect of the temperature on the laser tracker measurement system itself was not considered.
1:Experimental Design and Method Selection:
The methodology involves using laser tracker technology and several fiducial points fixed to the floor for the relative pointing error assessment. A Monte-Carlo-based simulation was used to validate the methodology.
2:Sample Selection and Data Sources:
The study focuses on the Telescope Mount Assembly (TMA) subsystem of the Large Synoptic Survey Telescope (LSST).
3:List of Experimental Equipment and Materials:
Leica AT402 laser tracker technology combined with Spatial Analyzer (SA) software from New Rivers Kinematics was used.
4:Experimental Procedures and Operational Workflow:
The measurement procedure involved placing a laser tracker inside the LSST, close to its origin, and measuring a metrology network comprising a reference point cloud fixed to the floor outside and surrounding the LSST telescope.
5:Data Analysis Methods:
A Monte-Carlo-based simulation platform was built to assess the achievable accuracy with an on-board laser tracker system.
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