首页> 外文会议>Conference on ground-based and airborne instrumentation for astronomy >A Novel Systems Engineering Approach to the Design of a Precision Radial Velocity Spectrograph - the GMT-Consortium Large Earth Finder (G-CLEF)
【24h】

A Novel Systems Engineering Approach to the Design of a Precision Radial Velocity Spectrograph - the GMT-Consortium Large Earth Finder (G-CLEF)

机译:设计精密径向速度光谱仪的新型系统工程方法-GMT联合会大型地球搜索仪(G-CLEF)

获取原文

摘要

One of the first light instruments for the Giant Magellan Telescope1 (GMT) will be the GMT-Consortium Large Earth Finder (G-CLEF). It is an optical band echelle spectrograph that is fiber fed to enable high stability. One of the key capabilities of G-CLEF will be its extremely precise radial velocity (PRV) measurement capability. The RV precision goal is 10 cm/sec, which is expected to be achieved with advanced calibration methods and the use of the GMT adaptive optics system. G-CLEF, as part of the GMT suite of instruments, is being designed within GMT's automated requirements management system. This includes requirements flow down, traceability, error budgeting, and systems compliance. Error budgeting is being employed extensively to help manage G-CLEF technical requirements and ensure that the top level requirements are met efficiently. In this paper we discuss the G-CLEF error budgeting process, concentrating on the PRV precision and instrument throughput budgets. The PRV error budgeting process is covered in detail, as we are taking a detailed systems error budgeting approach to the PRV requirement. This has proven particularly challenging, as the precise measurement of radial velocity is a complex process, with error sources that are difficult to model and a complex calibration process that is integral to the RV measurement. The PRV budget combines traditional modeling and analysis techniques, where applicable, with semi-empirical techniques, as necessary. Extrapolation from existing PRV instruments is also used in the budgeting process.
机译:巨型麦哲伦望远镜1(GMT)的首批照明仪器之一将是GMT联盟大型地球搜索仪(G-CLEF)。它是一种光纤阶梯式光谱仪,通过光纤进料以实现高稳定性。 G-CLEF的关键功能之一就是其极其精确的径向速度(PRV)测量功能。 RV的精度目标是10 cm / sec,这可以通过先进的校准方法和GMT自适应光学系统的使用来实现。 G-CLEF是GMT工具套件的一部分,正在GMT的自动化需求管理系统中进行设计。这包括需求流,可追溯性,错误预算和系统合规性。错误预算被广泛采用,以帮助管理G-CLEF技术要求并确保有效满足顶级要求。在本文中,我们讨论了G-CLEF错误预算过程,重点是PRV精度和仪器吞吐量预算。由于我们正在针对PRV要求采用详细的系统错误预算方法,因此将详细介绍PRV错误预算过程。由于径向速度的精确测量是一个复杂的过程,具有难以建模的误差源以及RV测量不可或缺的复杂校准过程,因此已证明这特别具有挑战性。 PRV预算在必要时将传统的建模和分析技术与半经验技术相结合。现有的PRV工具的推断也用于预算编制过程中。

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