首页> 外文会议>Optical Modeling and Performance Predictions III; Proceedings of SPIE-The International Society for Optical Engineering; vol.6675 >Optical Modeling Activities for NASA's James Webb Space Telescope (JWST): III. Wavefront Aberrations due to Alignment and Figure Compensation
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Optical Modeling Activities for NASA's James Webb Space Telescope (JWST): III. Wavefront Aberrations due to Alignment and Figure Compensation

机译:NASA詹姆斯·韦伯太空望远镜(JWST)的光学建模活动:III。对准和图形补偿导致的波前像差

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This paper is part three of a series describing the ongoing optical modeling activities for the James Webb Space Telescope (JWST). The first two papers discussed modeling JWST on-orbit performance using wavefront sensitivities to predict line of sight motion induced blur, and stability during thermal transients . The work here investigates the aberrations resulting from alignment and figure compensation of the controllable degrees of freedom (i.e. the primary and secondary mirrors), which may be encountered during ground alignment and on-orbit commissioning of the observatory. The optical design of the telescope is a three-mirror anastigmat, with an active fold mirror at the exit pupil for fine guiding. The primary mirror is over 6.5 meters in diameter, and is composed of 18 hexagonal segments that can individually positioned on hexapods, as well as compensated for radius of curvature. This architecture effectively gives both alignment and figure control of the primary mirror. The secondary mirror can be moved in rigid body only, and the tertiary mirror is fixed. Simulations are performed of various combinations of alignment and figure errors corrected by the primary and secondary mirrors. Single field point knowledge is assumed in the corrections, and aberrations over the field are reported for the varying cases.
机译:本文是描述詹姆斯·韦伯太空望远镜(JWST)正在进行的光学建模活动的系列文章的第三部分。前两篇论文讨论了使用波前敏感度来预测视线运动引起的模糊以及热瞬变期间的稳定性来对JWST在轨性能进行建模的方法。这里的工作研究了可控自由度(即主镜和副镜)的对准和图形补偿所产生的像差,这在天文台地面对准和在轨调试中可能会遇到。望远镜的光学设计是三反射镜,在出射光瞳处有一个主动折叠镜,用于精细引导。主镜直径超过6.5米,由18个六边形段组成,这些六边形段可以单独放置在六脚架上,并可以补偿曲率半径。该架构有效地提供了主镜的对齐和图形控制。辅助镜只能在刚体中移动,并且辅助镜是固定的。对由主镜和副镜校正的对准和图形误差的各种组合进行模拟。在校正中假设单个场点知识,并且针对不同情况报告整个场的像差。

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