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Flight Results of the NF-15B Intelligent Flight Control System (IFCS) Aircraft with Adaptation to a Longitudinally Destabilized Plant

机译:适应于纵向不稳定装置的NF-15B智能飞行控制系统(IFCS)飞机的飞行结果

摘要

Adaptive flight control systems have the potential to be resilient to extreme changes in airplane behavior. Extreme changes could be a result of a system failure or of damage to the airplane. The goal for the adaptive system is to provide an increase in survivability in the event that these extreme changes occur. A direct adaptive neural-network-based flight control system was developed for the National Aeronautics and Space Administration NF-15B Intelligent Flight Control System airplane. The adaptive element was incorporated into a dynamic inversion controller with explicit reference model-following. As a test the system was subjected to an abrupt change in plant stability simulating a destabilizing failure. Flight evaluations were performed with and without neural network adaptation. The results of these flight tests are presented. Comparison with simulation predictions and analysis of the performance of the adaptation system are discussed. The performance of the adaptation system is assessed in terms of its ability to stabilize the vehicle and reestablish good onboard reference model-following. Flight evaluation with the simulated destabilizing failure and adaptation engaged showed improvement in the vehicle stability margins. The convergent properties of this initial system warrant additional improvement since continued maneuvering caused continued adaptation change. Compared to the non-adaptive system the adaptive system provided better closed-loop behavior with improved matching of the onboard reference model. A detailed discussion of the flight results is presented.
机译:自适应飞行控制系统具有抵抗飞机行为极端变化的潜力。极端变化可能是系统故障或飞机损坏的结果。自适应系统的目标是在发生这些极端变化的情况下提高生存能力。为国家航空航天局NF-15B智能飞行控制系统飞机开发了基于直接自适应神经网络的飞行控制系统。自适应元件被并入具有明确参考模型的动态反演控制器中。作为测试,系统经受了工厂稳定性的突然变化,从而模拟了不稳定的故障。在有或没有神经网络适应的情况下进行飞行评估。列出了这些飞行测试的结果。讨论了与仿真预测的比较以及对自适应系统性能的分析。适应系统的性能是根据其稳定车辆和重新建立良好的车载参考模型的能力来评估的。进行模拟破坏稳定和适应性的飞行评估显示出车辆稳定性裕度的提高。由于持续的操纵导致持续的适应性变化,因此该初始系统的收敛特性值得进一步改善。与非自适应系统相比,自适应系统提供了更好的闭环行为,并改善了车载参考模型的匹配性。介绍了飞行结果的详细讨论。

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    Bosworth John T.;

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  • 年度 2008
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