空间核动力推进和动力系统可靠性的挑战

E. Zampino, R. Cataldo
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引用次数: 1

摘要

2002年10月,位于俄亥俄州克利夫兰的NASA格伦研究中心的动力和推进办公室和风险管理办公室开始为太空核推进和动力系统项目开发可靠性、可用性和可维护性(RAM)工程方法。空间核动力和推进项目的目标是为行星任务提供安全可靠的推进和动力系统。机组人员、地面人员和公众的安全必须是核动力空间系统RAM工程方法的最高优先级。该项目将需要一个顶级的可靠性目标,以便在0.95到0.98之间的范围内实现重大任务的成功。此外,安全运行而不损失人员、车辆或对公众造成危险的概率不能小于0.9999。这些操作目标的实现需要多种RAM工程技术的综合应用。这些包括:高级可靠性、可用性和可维护性分析、概率风险评估(包括硬件、软件和人为引起的故障)、加速寿命测试、零件应力分析和选择性端到端子系统测试。设计策略必须包括零件和材料的选择,以承受空间和行星环境中长时间运行的应力,并具有广泛的设计余量。行星际距离和由此产生的信号时间延迟驱动了包括冗余管理在内的主要系统功能的自主控制需求。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
The challenge of space nuclear propulsion and power systems reliability
In October of 2002, The Power and Propulsion Office and The Risk Management Office of NASA Glenn Research Center in Cleveland, Ohio began developing the reliability, availability, and maintainability (RAM) engineering approach for the Space Nuclear Propulsion and Power Systems Project. The objective of the Space Nuclear Power and Propulsion Project is to provide safe and reliable propulsion and power systems for planetary missions. The safety of the crew, ground personnel, and the public has to be the highest priority of the RAM engineering approach for nuclear powered space systems. The project will require a top level reliability goal for substantial mission success in the range from 0.95 to 0.98. In addition, the probability of safe operation without loss of crew, vehicle, or danger to the public, cannot be less than 0.9999. The achievement of these operational goals will require the combined application of many RAM engineering techniques. These include: advanced reliability, availability, and maintainability analysis, probabilistic risk assessment that includes hardware, software, and human induced faults, accelerated life testing, parts stress analysis, and selective end to end sub-system testing. Design strategy must involve the selection of parts and materials specifically to withstand the stresses of prolonged operation in the space and planetary environments with a wide design margin. Interplanetary distances and resulting signal time delay drive the need for autonomous control of major system functions including redundancy management.
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