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Advanced Technologies for Future Spacecraft Cockpits And Space-based Control Centers

机译:未来航天器驾驶舱和基于空间控制中心的先进技术

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The National Aeronautics and Space Administration (NASA) is embarking on a new era of Space Exploration, aimed at sending crewed spacecraft beyond Low Earth Orbit (LEO), in medium and long duration missions to the Lunar surface, Mars and beyond. The challenges of such missions are significant and will require new technologies and paradigms in vehicle design and mission operations. Current roles and responsibilities of spacecraft systems, crew and the flight control team, for example, may not be sustainable when real-time support is not assured due to distance-induced communication lags, radio blackouts, equipment failures, or other unexpected factors. Therefore, technologies and applications that enable greater Systems and Mission Management capabilities on-board the space-based system will be necessary to reduce the dependency on real-time critical Earth-based support. The focus of this paper is in such technologies that will be required to bring advance Systems and Mission Management capabilities to space-based environments where the crew will be required to manage both the systems performance and mission execution without dependence on the ground. We refer to this concept as "autonomy." Environments that require high levels of autonomy include the cockpits of future spacecraft such as the Mars Exploration Vehicle, and space-based control centers such as a Lunar Base Command and Control Center. Furthermore, this paper will evaluate the requirements, available technology, and roadmap to enable full operational implementation of onboard System Health Management, Mission Planning/re-planning, Autonomous Task/Command Execution, and Human Computer Interface applications. The technology topics covered by the paper include enabling technology to perform Intelligent Caution and Warning, where the systems provides directly actionable data for human understanding and response to failures, task automation applications that automate nominal and off-nominal task execution based on human input or integrated health state-derived conditions. Shifting from Systems to Mission Management functions, we discuss the role of automated planning applications (tactical planning) on-board, which receive data from the other cockpit automation systems and evaluate the mission plan against the dynamic systems and mission states and events, to provide the crew with capabilities that enable them to understand, change, and manage the timeline of their mission. Lastly, we discuss the role of advanced human interface technologies that organize and provide the system and mission information to the crew in ways that maximize their situational awareness and ability to provide oversight and control of all the automated data and functions.
机译:美国国家航空航天局(NASA)正在开始新的太空探索时代,旨在将船员航天器送到低地球轨道(LEO),中长期任务到月球表面,火星及以后。此类任务的挑战是显着的,需要在车辆设计和特派团运营中进行新技术和范例。例如,当由于距离诱导的通信滞后,无线电停电,设备故障或其他意外因素而确保实时支持时,飞行器系统,船员和飞行控制团队的当前角色和责任可能无法可持续。因此,在板上,可以实现更大的系统和任务管理功能的技术和应用,将需要降低基于实时关键地球的支持的依赖性。本文的重点是在这些技术中,将需要将提前的系统和使命管理能力带到基于空间的环境,其中机组人员需要管理系统性能和任务执行而不依赖地面。我们将这个概念称为“自主权”。需要高度自主性的环境包括未来航天器的驾驶舱,如火星探索辆,以及农历基于空间的控制中心,如月球基础命令和控制中心。此外,本文将评估要求,可用的技术和路线图,以实现船上系统健康管理,任务规划/重新规划,自主任务/命令执行和人机接口应用程序的全面运行实现。本文涵盖的技术主题包括启用技术,以执行智能警告和警告,其中系统为人类理解和对故障的响应提供直接可操作的数据,任务自动化应用程序根据人类输入或集成自动化标称和非名义任务执行的任务自动化应用程序健康状态衍生的条件。从系统转移到任务管理功能,我们讨论了自动化规划应用程序(战术规划)在板上的作用,从而从其他驾驶舱自动化系统接收数据,并评估了对动态系统和任务状态和活动的使命计划具有能力的工作人员使他们能够理解,更改和管理其使命的时间表。最后,我们讨论的是组织和提供系统和任务信息,船员的方式,最大限度地提高其态势感知能力,并提供监督和全自动化的数据和功能的控制能力,先进的人机界面技术方面的作用。

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