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Autonomous Guidance Algorithms for NASA Learn-to-Fly Technology Development

机译:NASA学习型飞行技术开发的自主制导算法

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Learn-to-Fly (L2F) is an advanced technology development effort under the NASA Transformative Aeronautics Concepts Program (TACP) that is aimed at assessing the feasibility of self-learning flight vehicles. Specifically, research has been conducted to demonstrate the potential to merge two enabling technologies; real-time aerodynamic modeling and adaptive controls, to substantially reduce the typical ground and flight testing requirements for air vehicle design. The approach to this effort involved development of unique airframes and on-board algorithms to demonstrate key L2F technologies on a fully autonomous flight test vehicle. This research, that included an aggressive flight test program, was intended to rapidly advance these technologies and demonstrate capabilities of the L2F approach. Key components of the L2F architecture include real-time aerodynamic modeling, adaptive controls and control allocation, and guidance. This paper provides an overview of the guidance algorithm which primarily served as an executive function to coordinate control commands for range navigation and the desired test conditions, provide autonomous envelope limiting/expansion and enable automatic landing to touchdown with no intervention from a human operator. A discussion of the L2F concept-of-operations and unique flight testing considerations, which influenced the guidance functional requirements, is included and results of recent flight testing are presented.
机译:飞行学习(L2F)是NASA变革性航空概念计划(TACP)的一项先进技术开发工作,旨在评估自学飞行器的可行性。具体而言,已经进行了研究以证明合并两种支持技术的潜力。实时空气动力学建模和自适应控制,从而大大降低了飞行器设计的典型地面和飞行测试要求。这项工作的方法包括开发独特的机身和机载算法,以在全自动飞行试验机上演示关键的L2F技术。这项研究包括一项激进的飞行测试计划,旨在迅速推进这些技术并展示L2F方法的功能。 L2F体系结构的关键组件包括实时空气动力学建模,自适应控制和控制分配以及制导。本文概述了该引导算法,该算法主要用作执行功能,以协调用于范围导航和所需测试条件的控制命令,提供自主的包络限制/扩展,并能够在无需人工干预的情况下自动着陆。讨论了L2F的操作概念和独特的飞行测试考虑因素,这些因素影响了制导功能要求,并给出了最近的飞行测试结果。

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