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AOCS design for the ATHENA X-ray telescope: challenges and solutions

机译:ATHENA X-Ray望远镜的AOC设计:挑战和解决方案

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The ATHENA—Advanced Telescope for High-ENergy Astrophysics—mission is currently assessed in a phase A feasibility study as L-class mission in ESA’s Cosmic Vision 2015–2025 plan, with launch foreseen in 2028. Primary mission goal is the mapping of hot gas structures and the determination of their physical properties to search for supermassive black holes. ATHENA is an X-ray telescope with a focal length of 12?m. It has a mass of ~?7000?kg and it is ~?15?m high with a diameter of ~?3?m. The main mass is distributed to the mirror on the one side of the spacecraft and to the science instrument module on the other side of the spacecraft. To achieve its science goals, ATHENA performs a sky survey with precision line-of-sight pointing requirements in the order of arc seconds for absolute pointing and sub-arc seconds for relative pointing in time windows >?1?ks, all at 95% confidence level. That is very demanding for large X-ray telescopes. In addition to the precision pointing requirements, ATHENA cannot violate a certain sun exclusion zone. This is a hard constraint to prevent any stray-light falling onto the instruments, as it would immediately destroy them. The sky survey is defined by an observation plan that is demanding in terms of availability and thus spacecraft agility. The pointing and agility requirements and the fact that ATHENA is a spacecraft with high mass and volume introduce several design challenges for the attitude and orbit control system. This paper presents those challenges, corresponding solutions, and preliminary results, which have been achieved during the phase A study led by Airbus in Friedrichshafen, Germany. The main focus and contribution of this paper are the identification of research and development needs for attitude and orbit control systems to enable the ATHENA mission. In this respect, the ATHENA design challenges are discussed and addressed with the state-of-the-art design methods. This paper concludes with the main identified technology development needs and formulates specific research questions related to practical design problems. In particular, the following attitude and orbit control system design challenges are addressed: autonomous and agile large angle slew manoeuvres with exclusion zones, availability for science observations, precision line-of-sight determination as well as analysis during the design process using the ESA Pointing Error Engineering Tool and pointing control with a hexapod as line-of-sight actuator in the control loop. The last challenge, namely, the hexapod in the control loop, is without precedence in Europe and to the best knowledge of the authors in the world.
机译:高能量天体物理学 - 特派团的雅典娜 - 高级望远镜目前在欧安科宇宙宇宙愿景2015-2025计划中作为L-Class任务的可行性研究进行了评估,2028年在2028年预见到的推出。主要任务目标是热气的映射结构和测定它们的物理性质,以搜索超大分类黑洞。雅典娜是一个X射线望远镜,焦距为12?m。它的质量〜?7000?kg,它是〜?15?m高,直径为〜?3?m。主物质分布在航天器的一侧的镜子上,并在航天器的另一侧的科学仪器模块上分布。为实现其科学目标,雅典娜以精密的视线表演,指向要求的弧度秒针的要求,用于绝对指向和子电弧秒,适用于时间窗口>?1?ks,所有均为95%置信水平。这对大型X射线望远镜非常苛刻。除了精确指向要求外,雅典娜不能违反某些太阳禁区。这是一个艰难的约束,以防止任何落入仪器的杂散光,因为它会立即摧毁它们。天空调查由观察计划定义,这些计划在可用性和因素敏捷性方面要求苛刻。指向和敏捷性要求以及雅典娜是具有高质量和批量的航天器的宇宙飞舟,介绍了态度和轨道控制系统的几个设计挑战。本文提出了这些挑战,相应的解决方案和初步结果,这些挑战是在德国Friedrichshafen的空中客车领导的研究期间实现的。本文的主要重点和贡献是识别态度和轨道控制系统的研究和开发需求,以实现雅典娜使命。在这方面,讨论了雅典娜设计挑战,并以最先进的设计方法讨论并解决了。本文结束了主要确定的技术发展需求,并制定了与实际设计问题相关的具体研究问题。特别是,解决了以下态度和轨道控制系统设计挑战:具有排除区域的自主和敏捷大角度换机器,科学观察的可用性,使用ESA指向设计过程中的精密视线测定以及分析误差工程工具和用e exapod指向控制作为控制回路中的视线执行器。最后的挑战是控制循环中的六角形,没有优先级,并在世界上的作者的最佳知识。

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