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Space Vehicle Powerdown Philosophies Derived from the Space Shuttle Program

机译:航天飞机计划衍生的航天器掉电哲学

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摘要

In spaceflight, electrical power is a vital but limited resource. Almost every spacecraft system, from avionics to life support systems, relies on electrical power. Since power can be limited by the generation system s performance, available consumables, solar array shading, or heat rejection capability, vehicle power management is a critical consideration in spacecraft design, mission planning, and real-time operations. The purpose of this paper is to capture the powerdown philosophies used during the Space Shuttle Program. This paper will discuss how electrical equipment is managed real-time to adjust the overall vehicle power level to ensure that systems and consumables will support changing mission objectives, as well as how electrical equipment is managed following system anomalies. We will focus on the power related impacts of anomalies in the generation systems, air and liquid cooling systems, and significant environmental events such as a fire, decrease in cabin pressure, or micrometeoroid debris strike. Additionally, considerations for executing powerdowns by crew action or by ground commands from Mission Control will be presented. General lessons learned from nearly 30 years of Space Shuttle powerdowns will be discussed, including an in depth case-study of STS-117. During this International Space Station (ISS) assembly mission, a failure of computers controlling the ISS guidance, navigation, and control system required that the Space Shuttle s maneuvering system be used to maintain attitude control. A powerdown was performed to save power generation consumables, thus extending the docked mission duration and allowing more time to resolve the issue.
机译:在太空飞行中,电力是至关重要但有限的资源。从航空电子设备到生命支持系统,几乎每个航天器系统都依赖于电力。由于功率可能会受到发电系统性能,可用消耗品,太阳能电池板遮蔽或散热能力的限制,因此在航天器设计,任务计划和实时操作中,车辆电源管理是至关重要的考虑因素。本文的目的是了解航天飞机计划期间使用的掉电原理。本文将讨论如何实时管理电气设备以调整车辆的整体功率水平,以确保系统和消耗品将支持不断变化的任务目标,以及如何在系统异常后管理电气设备。我们将重点关注发电系统,空气和液体冷却系统中异常,与功率相关的影响以及重大环境事件,例如起火,机舱压力降低或微流星体碎片撞击。此外,还将提出通过机组人员行动或任务控制部地面命令执行断电的考虑因素。将讨论从将近30年的航天飞机断电中汲取的一般经验教训,包括对STS-117的深入案例研究。在执行国际空间站(ISS)组装任务期间,控制ISS导航,导航和控制系统的计算机故障,因此需要使用航天飞机的操纵系统来维持姿态控制。进行断电以节省发电消耗品,从而延长了对接的任务持续时间,并留出了更多时间来解决问题。

著录项

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    Bailey, Brad; Willsey, Mark;

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  • 年度 2011
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