首页> 外文会议>UV/Optical/IR Space Telescopes and Instruments: Innovative Technologies and Concepts >Fast steering mirror disturbance effects on overall system optical performance for the Large Ultraviolet/Optical/Infrared Surveyor (LUVOIR) concept using a non-contact vibration isolation and precision pointing system
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Fast steering mirror disturbance effects on overall system optical performance for the Large Ultraviolet/Optical/Infrared Surveyor (LUVOIR) concept using a non-contact vibration isolation and precision pointing system

机译:快速转向镜扰动对大型紫外/光/红外测量仪(Luvoir)概念的整体系统光学性能的影响使用非接触式隔离和精密指向系统

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As the optical performance requirements of space telescopes get more stringent, the need to analyze all possible error sources early in the mission design becomes critical. One large telescope with tight performance requirements is the Large Ultraviolet / Optical / Infrared Surveyor (LUVOIR) concept. The LUVOIR concept includes a 15-meter-diameter segmented-aperture telescope with a suite of serviceable instruments operating over a range of wavelengths between 100nm to 2.5μm. Using an isolation architecture that involves no mechanical contact between the telescope and the host spacecraft structure allows for tighter performance metrics than current space-based telescopes being flown. Because of this separation, the spacecraft disturbances can be greatly reduced and disturbances on the telescope payload contribute more to the optical performance error. A portion of the optical performance error comes from the disturbances generated from the motion of the Fast Steering Mirror (FSM) on the payload. Characterizing the effects of this disturbance gives insight into FSM specifications needed to achieve the tight optical performance requirements of the overall system. Through analysis of the LUVOIR finite element model and linear optical model given a range of input disturbances at the FSM, the optical performance of the telescope and recommendations for FSM specifications can be determined. The LUVOIR observatory control strategy consists of a multi-loop control architecture including the spacecraft Attitude Control System (ACS), Vibration Isolation and Precision Pointing System (VIPPS), and FSM. This paper focuses on the control loop containing the FSM disturbances and their effects on the telescope optical performance.
机译:随着空间望远镜的光学性能要求变得更加严格,需要分析任务设计早期的所有可能的错误来源变得至关重要。具有紧密性能要求的一个大望远镜是大型紫外/光/红外测量仪(Luvoir)概念。 Luvoir概念包括一个带有15米直径的分割 - 孔径望远镜,其具有在100nm至2.5μm之间的波长范围内运行的可维修仪器套件。使用涉及望远镜和宿主航天器结构之间没有机械接触的隔离架构允许比当前基于空间的望远镜飞行的更紧密的性能度量。由于这种分离,可以大大降低航天器干扰,并且望远镜有效载荷对光学性能误差的扰动有贡献。光学性能误差的一部分来自有效载荷上的快速转向镜(FSM)的运动产生的干扰。表征这种干扰的效果,可以深入了解实现整个系统紧密光学性能要求所需的FSM规格。通过分析Luvoir有限元模型和线性光学模型,在FSM处提供一系列输入干扰,可以确定望远镜的光学性能和FSM规范的建议。 Luvoir天文台控制策略包括多环控制架构,包括航天器姿态控制系统(ACS),隔振和精密指向系统(VIPP)和FSM。本文侧重于包含FSM干扰的控制回路及其对望远镜光学性能的影响。

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