首页> 外文会议>SPIE Astronomical Telescopes + Instrumentation Conference >Characterization and calibration of the James Webb Space Telescope mirror actuators fine stage motion
【24h】

Characterization and calibration of the James Webb Space Telescope mirror actuators fine stage motion

机译:詹姆斯·韦伯太空望远镜镜致动器的精细平台运动的表征和校准

获取原文

摘要

The James Webb Space Telescope's (Webb's) deployable primary and secondary mirrors are actively controlled to achieve and maintain precise optical alignment on-orbit. Each of the 18 primary mirror segment assemblies (PMSAs) and the secondary mirror assembly (SMA) are controlled in six degrees of freedom by using six linear actuators in a hexapod arrangement. In addition, each PMSA contains a seventh actuator that adjusts radius of curvature (RoC). The actuators are of a novel stepper motor-based cryogenic two-stage design that is capable of sub-10 nm motion accuracy over a 20 mm range. The nm-level motion of the 132 actuators were carefully tested and characterized before integration into the mirror assemblies. Using these test results as an initial condition, knowledge of each actuator's length (and therefore mirror position) has relied on software bookkeeping and configuration control to keep an accurate motor step count from which actuator position can be calculated. These operations have been carefully performed through years of Webb test operations using both ground support actuator control software as well as the flight Mirror Control Software (MCS). While the actuator's coarse stage length is cross-checked using a linear variable differential transformer (LVDT), no on-board cross-check exists for the nm-level length changes of the actuators' fine stage. To ensure that the software bookkeeping of motor step count is still accurate after years of testing and to test that the actuator position knowledge was properly handed off from the ground software to the flight MCS, a series of optical tests were devised and performed through the Center of Curvature (CoC) ambient optical test campaigns at the Goddard Space Flight Center (GSFC) and during the thermal-vacuum tests of the entire optical payload that were conducted in Chamber A at Johnson Space Center (JSC). In each test, the actuator Fine Step Count (FSC) value is compared to an external measurement provided by an optical metrology tool with the goal of either confirming the MCS database value, or providing a recommendation for an updated calibration if the measured FSC differs significantly from the MCS-based expectation. During ambient testing of the PMSA hexapods, the nm-level actuator length changes were measured with a custom laser deflectometer by measuring tilts of the PMSA. The PMSA RoC fine stage characterization was performed at JSC using multi-wave interferometric measurements with the CoC Optical Assembly (COCOA). Finally, the SMA hexapod fine stage characterization test was performed at JSC using the NIRCam instrument in the "pass-and-a-half" test configuration using a test source from the Aft-Optics System Source Plate Assembly (ASPA). In this paper, each of these three tests, subsequent data analyses, and uncertainty estimations will be presented. Additionally, a summary of the ensemble state of Webb's actuator fine stages is provided, along with a comparison to a Wavefront Sensing & Control (WFSC)-based requirement for FSC errors as they relate to the optical alignment convergence of the telescope on-orbit.
机译:詹姆斯·韦伯太空望远镜(Webb)可部署的主镜和副镜受到主动控制,以实现并维持在轨的精确光学对准。通过使用六脚架结构中的六个线性致动器,可以在六个自由度中控制18个主镜段组件(PMSA)和副镜组件(SMA)中的每一个。此外,每个PMSA都包含一个第七致动器,可调节曲率半径(RoC)。致动器采用新颖的基于步进电机的低温两级设计,能够在20 mm范围内达到10 nm以下的运动精度。在集成到反射镜组件中之前,对132个执行器的纳米级运动进行了仔细的测试和表征。使用这些测试结果作为初始条件,每个执行器的长度(以及镜面位置)的知识都依赖于软件记账和配置控制,以保持准确的电机步数,从而可以计算出执行器位置。通过多年的Webb测试操作,已经使用地面支撑执行器控制软件以及飞行后视镜控制软件(MCS)仔细地执行了这些操作。使用线性可变差动变压器(LVDT)对执行器的粗载台长度进行交叉检查时,对于执行器的细载台的纳米级长度变化,不存在板上交叉检查。为了确保经过多年的测试,电机步数的软件记账仍然是准确的,并且为了确保执行器位置知识已从地面软件正确地传递到飞行MCS,设计了一系列光学测试,并通过中心进行了测试戈达德太空飞行中心(GSFC)进行的曲率(CoC)环境光学测试活动,以及在约翰逊航天中心(JSC)的A舱进行的整个光学有效载荷的热真空测试期间。在每次测试中,将执行机构的“精细步数”(FSC)值与光学计量工具提供的外部测量值进行比较,目的是确认MCS数据库值,或者如果测得的FSC显着不同,则为更新校准提供建议来自基于MCS的期望。在对PMSA六脚架进行环境测试期间,使用定制的激光偏转仪通过测量PMSA的倾斜度来测量纳米级致动器的长度变化。在JSC上使用CoC光学组件(COCOA)进行多波干涉测量,对PMSA RoC精细级进行了表征。最终,在JSC上使用NIRCam仪器,在“通过并半”测试配置中,使用了来自尾部光学系统源板组件(ASPA)的测试源,进行了SMA六脚架精细阶段特性测试。在本文中,将介绍这三个测试中的每一个,随后的数据分析以及不确定性估计。此外,还提供了韦伯致动器精细级的总体状态的摘要,并与基于波前传感和控制(WFSC)的FSC误差要求进行了比较,因为它们与望远镜在轨光学对准收敛有关。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号