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Error reduction and modeling for hexapod positioners of secondary mirrors for large ground-based telescopes

机译:大型地面望远镜辅助镜的六脚架定位器的误差减小和建模

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The positioning requirements for secondary mirrors and instruments for large ground-based telescopes are becoming increasingly challenging. Modern telescope designs, such as LSST and TMT, are specifying repeatability and/or absolute accuracy limits below 10 μm and 10 μrad for the hexapod positioning systems generally used for these applications. Hexapod error sources, including lead screw pitch variations, windup, backlash, friction, thermal expansion, compliance, sensing, and joint node location uncertainties, are examined along with methods for reducing or eliminating these errors by mechanical means or through calibration. Alternative sensing approaches are discussed and their relative benefits are evaluated. Finally, a model-based design approach is presented for conducting initial design trade studies, assessing technical risk, predicting achievable performance, establishing subsystem and component requirements, and tracking positioning error budgets through the entire development process. A parametric actuator model and its initial results are described, and testing approaches are outlined to identify key model parameters and verify subsystem and component performance.
机译:大型地面望远镜对辅助镜和仪器的定位要求变得越来越具有挑战性。诸如LSST和TMT之类的现代望远镜设计规定了通常用于这些应用的六脚架定位系统的可重复性和/或绝对精度限制在10μm和10μrad以下。研究了六足误差源,包括丝杠螺距变化,上紧,反冲,摩擦,热膨胀,顺应性,感测和关节节点位置不确定性,以及通过机械手段或通过校准减少或消除这些误差的方法。讨论了替代传感方法,并评估了其相对优势。最后,提出了一种基于模型的设计方法,用于进行初始设计行业研究,评估技术风险,预测可实现的性能,建立子系统和组件要求以及在整个开发过程中跟踪定位误差预算。描述了参数执行器模型及其初始结果,并概述了测试方法以识别关键模型参数并验证子系统和组件的性能。

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