首页> 外文会议>Conference on Space Telescopes and Instrumentation >Euclid Near Infrared Spectrometer and Photometer instrument concept and first test results obtained for different breadboards models at the end of phase C
【24h】

Euclid Near Infrared Spectrometer and Photometer instrument concept and first test results obtained for different breadboards models at the end of phase C

机译:EuclID近红外光谱仪和光度计仪器概念和第一个在C阶段结束时获得的不同面包板模型的测试结果

获取原文

摘要

The Euclid mission objective is to understand why the expansion of the Universe is accelerating through by mapping the geometry of the dark Universe by investigating the distance-redshift relationship and tracing the evolution of cosmic structures. The Euclid project is part of ESA's Cosmic Vision program with its launch planned for 2020 (ref [1]). The NISP (Near Infrared Spectrometer and Photometer) is one of the two Euclid instruments and is operating in the near-IR spectral region (900-2000nm) as a photometer and spectrometer. The instrument is composed of: - a cold (135K) optomechanical subsystem consisting of a Silicon carbide structure, an optical assembly (corrector and camera lens), a filter wheel mechanism, a grism wheel mechanism, a calibration unit and a thermal control system; - a detection subsystem based on a mosaic of 16 HAWAII2RG cooled to 95K with their front-end readout electronic cooled to 140K, integrated on a mechanical focal plane structure made with molybdenum and aluminum. The detection subsystem is mounted on the optomechanical subsystem structure; - a warm electronic subsystem (280K) composed of a data processing/detector control unit and of an instrument control unit that interfaces with the spacecraft via a 1553 bus for command and control and via Spacewire links for science data. This presentation describes the architecture of the instrument at the end of the phase C (Detailed Design Review), the expected performance, the technological key challenges and preliminary test results obtained for different NISP subsystem breadboards and for the NISP Structural and Thermal model (STM).
机译:欧几里德使命目标是通过研究距离 - 红移关系并追踪宇宙结构的演变来了解宇宙的扩张通过绘制暗宇宙的几何形状来加速宇宙的扩张。欧几里德项目是ESA的宇宙愿景计划的一部分,其推出计划计划于2020(参考文献[1])。 NISP(近红外光谱仪和光度计)是两个EuclID仪器之一,并且在接近IR光谱区域(900-2000nm)中作为光度计和光谱仪操作。该仪器由碳化硅结构,光学组件(校正器和相机镜头),滤光轮机构,革命轮机构,校准单元和热控制系统组成: - 一种冷(135k)光学机械子系统,包括碳化硅结构,光学组件(校正器和相机),滤网机构,塑料轮机构,校准单元和热控制系统; - 基于16个夏威夷的马赛克的检测子系统冷却到95K,其前端读出电子冷却至140K,集成在用钼和铝制制成的机械焦平面结构上。检测子系统安装在光学力学子系统结构上; - 由数据处理/检测器控制单元和仪器控制单元组成的温暖电子子系统(280k),该仪器控制单元通过1553总线与航天器接口,用于命令和控制,并通过用于科学数据的太空链路。本演示文稿描述了C相结束时仪器的架构(详细的设计评审),预期的性能,用于不同NISP子系统面包板和NISP结构和热模型(STM)获得的技术关键挑战和初步测试结果。

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