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Wavefront-error performance characterization for the James Webb Space Telescope (JWST) Integrated Science Instrument Module (ISIM) science instruments

机译:詹姆斯·韦伯太空望远镜(JWST)综合科学仪器模块(ISIM)科学仪器的波前误差性能表征

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The science instruments (SIs) comprising the James Webb Space Telescope (JWST) Integrated Science Instrument Module (ISIM) were tested in three cryogenic-vacuum test campaigns in the NASA Goddard Space Flight Center (GSFC)'s Space Environment Simulator (SES) test chamber. In this paper, we describe the results of optical wavefront-error performance characterization of the SIs. The wavefront error is determined using image-based wavefront sensing, and the primary data used by this process are focus sweeps, a series of images recorded by the instrument under test in its as-used configuration, in which the focal plane is systematically changed from one image to the next. High-precision determination of the wavefront error also requires several sources of secondary data, including 1) spectrum, apodization, and wavefront-error characterization of the optical ground-support equipment (OGSE) illumination module, called the OTE Simulator (OSIM), 2) f/# and pupil-distortion measurements made using a pseudo-nonredundant mask (PNRM), and 3) pupil-geometry predictions for each SI field point tested, which are complicated because of a tricontagon-shaped outer perimeter and small holes that appear in the exit pupil due to the way that different light sources are injected into the optical path by the OGSE. One set of wavefront-error tests, for the coronagraphic channel of the Near-Infrared Camera (NIRCam) Longwave instruments, was performed using data from transverse-translation diversity (TTD) sweeps instead of focus sweeps, in which a sub-aperture is translated and/or rotated across the exit pupil of the system from one image to the next. Several optical-performance requirements that were verified during this ISIM Element-level testing are levied on the uncertainties of various wavefront-error-related quantities rather than on the wavefront errors themselves. This paper also gives an overview of the methodology, based on Monte Carlo simulations of the wavefront-sensing analysis of focus-sweep data, used to establish the uncertainties of the wavefront-error maps.
机译:包括詹姆斯·韦伯太空望远镜(JWST)综合科学仪器模块(ISIM)在内的科学仪器(SI)在NASA戈达德太空飞行中心(GSFC)的空间环境模拟器(SES)测试中的三个低温真空测试活动中进行了测试室。在本文中,我们描述了SI的光波前误差性能表征的结果。波前误差是使用基于图像的波前传感技术确定的,该过程使用的主要数据是聚焦扫描,这是被测仪器在其使用状态下记录的一系列图像,其中焦平面从一幅图像到另一幅图像。高精度确定波前误差还需要几个辅助数据源,包括1)称为OTE模拟器(OSIM)的光学地面支持设备(OGSE)照明模块的光谱,变迹和波前误差特性,2 )使用伪非冗余遮罩(PNRM)进行的f /#和瞳孔失真测量,以及3)对于测试的每个SI场点的瞳孔几何形状预测,由于三对角形的外围和出现的小孔而变得很复杂由于不同的光源被OGSE注入光路的方式,因此在出瞳中会产生一些误差。使用来自横向平移分集(TTD)扫描而不是聚焦扫描的数据对近红外相机(NIRCam)Longwave仪器的冠状通道进行了一组波前误差测试,其中平移了子孔径和/或在系统的出射光瞳上从一个图像旋转到另一个图像。在此ISIM元素级测试中已验证的若干光学性能要求是根据与波前误差相关的各种量的不确定性而不是波前误差本身来确定的。本文还基于聚焦扫描数据的波前感测分析的蒙特卡洛模拟对方法进行了概述,该方法用于建立波前误差图的不确定性。

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