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Resilient Propulsion Control Research for the NASA Integrated Resilient Aircraft Control (IRAC) Project

机译:NASA综合防弹飞机控制(IRAC)项目的防弹推进控制研究

摘要

Gas turbine engines are designed to provide sufficient safety margins to guarantee robust operation with an exceptionally long life. However, engine performance requirements may be drastically altered during abnormal flight conditions or emergency maneuvers. In some situations, the conservative design of the engine control system may not be in the best interest of overall aircraft safety; it may be advantageous to "sacrifice" the engine to "save" the aircraft. Motivated by this opportunity, the NASA Aviation Safety Program is conducting resilient propulsion research aimed at developing adaptive engine control methodologies to operate the engine beyond the normal domain for emergency operations to maximize the possibility of safely landing the damaged aircraft. Previous research studies and field incident reports show that the propulsion system can be an effective tool to help control and eventually land a damaged aircraft. Building upon the flight-proven Propulsion Controlled Aircraft (PCA) experience, this area of research will focus on how engine control systems can improve aircraft safe-landing probabilities under adverse conditions. This paper describes the proposed research topics in Engine System Requirements, Engine Modeling and Simulation, Engine Enhancement Research, Operational Risk Analysis and Modeling, and Integrated Flight and Propulsion Controller Designs that support the overall goal.
机译:燃气涡轮发动机的设计可提供足够的安全裕度,以确保强劲的运行以及超长的使用寿命。但是,在异常飞行条件或紧急情况下,发动机性能要求可能会发生重大变化。在某些情况下,发动机控制系统的保守设计可能并不符合飞机整体安全的最大利益。 “牺牲”发动机以“节省”飞机可能是有利的。受此机会的激励,美国国家航空航天局航空安全计划正在进行有弹性的推进研究,旨在开发自适应发动机控制方法,以使发动机超出正常范围进行紧急操作,以最大程度地使受损飞机安全着陆。先前的研究和现场事件报告显示,推进系统可以成为帮助控制并最终降落受损飞机的有效工具。在经过飞行验证的推进控制飞机(PCA)经验的基础上,该研究领域将集中于发动机控制系统如何在不利条件下提高飞机的安全着陆概率。本文介绍了在发动机系统需求,发动机建模和仿真,发动机增强研究,操作风险分析和建模以及支持总体目标的集成式飞行和推进控制器设计中提出的研究主题。

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