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Alignment Test Results of the JWST Pathfinder Telescope Mirrors in the Cryogenic Environment

机译:JWST Pathfinder望远镜镜在低温环境中的对准测试结果

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After integration of the Optical Telescope Element (OTE) to the Integrated Science Instrument Module (ISIM) to become the OTIS, the James Webb Space Telescope OTIS is tested at NASA's Johnson Space Center (JSC) in the cryogenic vacuum Chamber A for alignment and optical performance. The alignment of the mirrors comprises a sequence of steps as follows: The mirrors are coarsely aligned using photogrammetry cameras with reflective targets attached to the sides of the mirrors. Then a multi-wavelength interferometer is aligned to the 18-segment primary mirror using cameras at the center of curvature to align reflected light from the segments and using fiducials at the edge of the primary mirror. Once the interferometer is aligned, the 18 primary mirror segments are then adjusted to optimize wavefront error of the aggregate mirror. This process phases the piston and tilt positions of all the mirror segments. An optical fiber placed at the Cassegrain focus of the telescope then emits light towards the secondary mirror to create a collimated beam emitting from the primary mirror. Portions of the collimated beam are retro-reflected from flat mirrors at the top of the chamber to pass through the telescope to the Science Instrument (SI) detector. The image on the detector is used for fine alignment of the secondary mirror and a check of the primary mirror alignment using many of the same analysis techniques used in the on-orbit alignment. The entire process was practiced and evaluated in 2015 at cryogenic temperature with the Pathfinder telescope.
机译:将光学望远镜元件(OTE)集成到集成的科学仪器模块(ISIM)成为OTIS之后,James Webb Space望远镜OTIS在NASA的Johnson Space Center(JSC)中在低温真空室A中进行测试,用于对准和光学表现。镜子的对准包括如下步骤顺序:镜子使用光摄影相机粗略地对准,具有附着在镜子的侧面的反射靶。然后,多波长干涉仪使用曲率中心的摄像机对准到18段主镜,以对准来自段的反射光并在主镜的边缘处使用基准。一旦干涉仪对齐,则调整18个主镜段以优化聚集镜的波前误差。该过程阶跃所有镜子段的活塞和倾斜位置。放置在望远镜的CasseGrain焦点上的光纤,然后发光向二次镜子以产生从主镜子发射的准直光束。准直光束的部分从腔室顶部的平面反射复古反射,以通过望远镜到科学仪器(Si)探测器。检测器上的图像用于二次镜的精细对准和使用在轨道对齐中使用的许多相同的分析技术检查主镜对对齐。通过探测器望远镜在低温温度下在2015年实施和评估整个过程。

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