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Proof of concept simulator demonstration of a physics based self-preserving flight envelope protection algorithm

机译:基于物理学的自保持飞行包线保护算法的概念验证器演示

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This article discusses the development of an adaptive protection algorithm which is based on a physical approach, with the purpose to keep a closed loop aircraft with manual control laws within the actual safe flight envelope, even in the presence of failures or disturbances. Adaptive estimation of the flight envelope guarantees that not only flap changes, but also damage (e.g. icing) and external disturbances such as wind can be taken into account. This method is robust with respect to uncertainties in the estimates for the aerodynamic properties. This updated information makes the flight control laws more self-preserving and prevents loss of control in flight. This development can extend the functional envelope of the nominal law and reduce the need to switch from nominal to alternate law in the presence of certain failures. This algorithm has been applied on a simulation model of a medium range passenger aircraft and the setup has been implemented and evaluated in the DLR Robotic Motion Simulator at the German Aerospace Center as a proof of concept demonstration.
机译:本文讨论了一种基于物理方法的自适应保护算法的开发,目的是即使在出现故障或干扰的情况下,也可以将具有手动控制律的闭环飞机保持在实际的安全飞行范围内。飞行包络线的自适应估计不仅可以确保襟翼变化,还可以考虑损坏(例如结冰)和外部干扰(例如风)。对于空气动力学特性的估计中的不确定性,该方法是鲁棒的。更新后的信息使飞行控制法律更加自我保留,并防止了飞行控制失控。这种发展可以扩展名义法律的功能范围,并减少在出现某些故障时从名义法律转换为替代法律的需求。该算法已应用于中程客机的仿真模型,并已在德国航空航天中心的DLR机器人运动仿真器中进行了安装和评估,以进行概念验证。

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