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What If...The Evolution Of Contingency Planning On An Extended Mission

机译:如果......扩展任务的应急计划的演变是什么?

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A robust autonomous fault management system is a typical and desirable feature in spacecraft design. When developing system requirements and designing the spacecraft, specific hardware and software elements are incorporated to protect the spacecraft from life-threatening situations on-orbit. Characteristics such as attitude control and angular momentum management, power generation and management, and an evolving thermal environment could all require a timely response to correct anomalous conditions. Operational procedures and ground support products must also be ready to diagnose and respond to on-board faults and return the spacecraft to nominal mission operations. During pre-launch and early mission activities, program resource limitations, design trade-offs, and assumptions made in establishing the mission operations concept may constrain the fault management features that are actually implemented. As mission operations stretch out well beyond the initial expected lifetime, a number of challenges are possible. Degradation of on-orbit equipment; changes in the use of the spacecraft, its orbit and its environment, ground system advancement, changes in flight team personnel, changes to mission goals, and other unanticipated factors can all come into play to potentially make the in-place fault management features obsolete, outdated, or even dangerous. In order to address these concerns and continue to execute a safe and effective mission, the flight team must regularly assess the capability and flexibility of the spacecraft and ground system components, potentially beyond what was originally in the design specifications, so that appropriate hardware, software, and procedural adjustments can be made in the areas of autonomous fault management and anomaly response/recovery. In addition to lessons learned from actual on-orbit anomalies, this can be done through creative and challenging exercises involving a spacecraft ground simulator as well as group-level anomaly response planning exercises. Through these techniques the Chandra X-Ray Observatory flight team has built an engineering and operations "tool box" that has useful, flexible, and effective products for dealing with the more complex and multi-level fault scenarios to be expected over a 20-30 year mission. This paper discusses the evolution of the Chandra X-Ray Observatory fault management philosophy and capabilities, including the history and rationale behind a number of spacecraft, ground system, and operations concept changes that have been made to improve system robustness and reduce program risk towards achieving the extended mission goals.
机译:强大的自主故障管理系统是航天器设计中的典型和理想的特征。在开发系统要求和设计航天器时,并入特定的硬件和软件元素,以保护航天器免受威胁的轨道的终身情况。姿态控制和角动量管理,发电和管理等特征,以及不断发展的热环境都可能需要及时响应校正异常情况。运营程序和地面支持产品还必须准备好诊断和响应板载故障,并将航天器返回标称任务业务。在推出和早期任务活动期间,计划资源限制,设计权衡和建立任务操作概念的假设可能会限制实际实施的故障管理功能。由于特派团运营远远超出了最初的预期寿命,因此可能存在许多挑战。轨道设备的降解;使用航天器的变化,其轨道及其环境,地面系统进步,飞行团队人员的变化,使命目标的变化以及其他意外的因素都可以发挥作用,使土就是故障管理功能过时,过时,甚至危险。为了解决这些问题并继续执行安全有效的使命,飞行团队必须定期评估航天器和地面系统组件的能力和灵活性,可能超出最初在设计规范中的原因,使适当的硬件,软件并且可以在自主故障管理和异常响应/恢复领域进行程序调整。除了从实际的轨道异常中吸取的经验教训之外,这可以通过涉及航天器地模拟器以及组级异常反应计划练习来完成创造性和挑战性的练习。通过这些技术,Chandra X射线天文台飞行团队建立了一个工程和操作“工具盒”,可以在20-30上处理更复杂和多级故障场景的有用,灵活和有效的产品使命。本文讨论了Chandra X射线天文台故障管理哲学和能力的演变,包括许多航天器,地面系统和运营概念变化的历史和理由,以提高系统稳健性,降低实现方案风险扩展的任务目标。

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