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Design and Application of the Exploration Maintainability Analysis Tool

机译:勘探可维护性分析工具的设计与应用

摘要

Conducting human exploration missions beyond Low Earth Orbit (LEO) will present unique challenges in the areas of supportability and maintainability. The durations of proposed missions can be relatively long and re-supply of logistics, including maintenance and repair items, will be limited or non-existent. In addition, mass and volume constraints in the transportation system will limit the total amount of logistics that can be flown along with the crew. These constraints will require that new strategies be developed with regards to how spacecraft systems are designed and maintained. NASA is currently developing Design Reference Missions (DRMs) as an initial step in defining future human missions. These DRMs establish destinations and concepts of operation for future missions, and begin to define technology and capability requirements. Because of the unique supportability challenges, historical supportability data and models are not directly applicable for establishing requirements for beyond LEO missions. However, supportability requirements could have a major impact on the development of the DRMs. The mass, volume, and crew resources required to support the mission could all be first order drivers in the design of missions, elements, and operations. Therefore, there is a need for enhanced analysis capabilities to more accurately establish mass, volume, and time requirements for supporting beyond LEO missions. Additionally, as new technologies and operations are proposed to reduce these requirements, it is necessary to have accurate tools to evaluate the efficacy of those approaches. In order to improve the analysis of supportability requirements for beyond LEO missions, the Space Missions Analysis Branch at the NASA Langley Research Center is developing the Exploration Maintainability Analysis Tool (EMAT). This tool is a probabilistic simulator that evaluates the need for repair and maintenance activities during space missions and the logistics and crew requirements to support those activities. Using a Monte Carlo approach, the tool simulates potential failures in defined systems, based on established component reliabilities, and then evaluates the capability of the crew to repair those failures given a defined store of spares and maintenance items. Statistical analysis of Monte Carlo runs provides probabilistic estimates of overall mission safety and reliability. This paper will describe the operation of the EMAT, including historical data sources used to populate the model, simulation processes, and outputs. Analysis results are provided for a candidate exploration system, including baseline estimates of required sparing mass and volume. Sensitivity analysis regarding the effectiveness of proposed strategies to reduce mass and volume requirements and improve mission reliability is included in these results.
机译:在低地球轨道(LEO)之外进行人类探索任务将在可支持性和可维护性方面提出独特的挑战。拟议任务的持续时间可能会相对较长,包括维修和修理项目在内的后勤补给将受到限制或不存在。另外,运输系统中的质量和体积限制将限制可以与机组人员一起运输的物流总量。这些限制将要求就如何设计和维护航天器系统制定新的战略。 NASA目前正在开发设计参考任务(DRM),作为定义未来人类任务的第一步。这些DRM为将来的任务确定了目的地和作战概念,并开始定义技术和能力要求。由于存在独特的可支持性挑战,因此历史可支持性数据和模型不能直接用于确定LEO任务之后的需求。但是,可支持性要求可能会对DRM的开发产生重大影响。支持任务所需的质量,数量和人员资源都可能是任务,要素和作战设计中的第一手驱动程序。因此,需要增强的分析功能,以更准确地确定质量,体积和时间要求,以支持LEO以外的任务。另外,由于提出了减少这些要求的新技术和新操作,因此必须有准确的工具来评估这些方法的有效性。为了改进对LEO以外任务的可支持性要求的分析,美国宇航局兰利研究中心的太空任务分析处正在开发探索可维护性分析工具(EMAT)。该工具是一个概率模拟器,可评估太空飞行任务期间维修和保养活动的需求以及支持这些活动的后勤和机组人员需求。该工具使用蒙特卡洛方法,基于已建立的组件可靠性来模拟定义的系统中的潜在故障,然后在给定的备用零件和维护项目存储量的情况下,评估机组修复这些故障的能力。蒙特卡洛运行的统计分析提供了总体任务安全性和可靠性的概率估计。本文将描述EMAT的操作,包括用于填充模型,仿真过程和输出的历史数据源。提供了候选勘探系统的分析结果,包括所需备用质量和体积的基线估计。这些结果中包含了有关拟议中的策略的有效性的敏感度分析,这些策略可减少质量和体积需求并提高任务可靠性。

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