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Practical Application of a Subscale Transport Aircraft for Flight Research in Control Upset and Failure Conditions

机译:一种用于飞行研究的超小型运输机在控制失常和故障条件下的实际应用

摘要

Over the past decade, the goal of reducing the fatal accident rate of large transport aircraft has resulted in research aimed at the problem of aircraft loss-of-control. Starting in 1999, the NASA Aviation Safety Program initiated research that included vehicle dynamics modeling, system health monitoring, and reconfigurable control systems focused on flight regimes beyond the normal flight envelope. In recent years, there has been an increased emphasis on adaptive control technologies for recovery from control upsets or failures including damage scenarios. As part of these efforts, NASA has developed the Airborne Subscale Transport Aircraft Research (AirSTAR) flight facility to allow flight research and validation, and system testing for flight regimes that are considered too risky for full-scale manned transport airplane testing. The AirSTAR facility utilizes dynamically-scaled vehicles that enable the application of subscale flight test results to full scale vehicles. This paper describes the modeling and simulation approach used for AirSTAR vehicles that supports the goals of efficient, low-cost and safe flight research in abnormal flight conditions. Modeling of aerodynamics, controls, and propulsion will be discussed as well as the application of simulation to flight control system development, test planning, risk mitigation, and flight research.
机译:在过去的十年中,降低大型运输机致命事故率的目标导致了针对飞​​机失控问题的研究。从1999年开始,美国国家航空航天局(NASA)航空安全计划就开始进行研究,包括车辆动力学建模,系统健康监控以及可重配置的控制系统,这些系统的重点是超出正常飞行范围的飞行状态。近年来,人们越来越重视自适应控制技术,以从控制失常或故障(包括损坏情况)中恢复。作为这些努力的一部分,美国宇航局开发了机载超标运输飞机研究(AirSTAR)飞行设施,以进行飞行研究和验证,以及对被认为对于全面载人运输飞机测试而言风险太大的飞行状态进行系统测试。 AirSTAR设施利用动态缩放的飞行器,可将次尺度飞行测试结果应用于完整尺度的飞行器。本文介绍了用于AirSTAR车辆的建模和仿真方法,该方法可支持在异常飞行条件下进行高效,低成本和安全飞行研究的目标。将讨论空气动力学,控制和推进的建模,以及模拟在飞行控制系统开发,测试计划,风险缓解和飞行研究中的应用。

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