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Aircraft Loss - Of - Control Recovery Using Optimal High Order Sliding Mode Control with Discontinuous High Order Observers

机译:飞机损失 - 使用最优高阶滑动模式控制,具有不连续的高阶观察员的最优高阶滑模控制

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The complexity of modern commercial, military aircraft and space vehicle requires an advanced level of automation that would prevent flight vehicles from losing controllability due to failure, or maneuverability near critical points, and also assist pilots during the recovering process following Loss - Of - Control (LOC). LOC has been among the most predominant causes of aircraft accidents over the past decade. Few research reports directly address the connection of LOC with in flight bifurcation phenomenon. In this paper we are concerned mainly with bifurcation points of the equilibrium equations, ordinarily associated with stall, spin, falling leaf and others aircraft upset scenarios. Such bifurcation points are not usually associated to a particular failure of components but once the vehicle manoeuvre near those irregular points, it loses its ability to regulate in flight keys outputs due to the occurrence of structurally unstable zero or sliding dynamics. Throughout this analysis, an investigation of the bifurcation point is carried out and a recovery strategy is designed using Dynamic Extension and High Order Sliding Mode Control techniques. In the design process, emphasis is on the design of discontinuous high order sliding mode observers because they play a viable role in an environment where switching is important. The Generic Transport Model (GTM) model is used for illustration of the recovery process.
机译:现代商业,军用飞机和空间车辆的复杂性需要先进的自动化水平,这将防止飞行车辆由于故障而导致的可控性,或者在关键点附近的机动性,并且在恢复过程中辅助导频后控制( LOC)。 LOC一直是过去十年飞机事故的最主要原因之一。很少有研究报告直接与飞行分叉现象的联系方式解决了LOC的连接。在本文中,我们主要涉及平衡方程的分叉点,通常与摊位,旋转,落叶和其他飞机镦粗方案相关。这种分叉点通常与组件的特定故障相关,而是一旦车辆操纵在那些不规则点附近,它会导致其在飞行键引起的能力导致的飞行键输出,这是由于结构不稳定的零或滑动动力学的发生。在整个分析过程中,进行了对分叉点的研究,并使用动态延伸和高阶滑模控制技术设计了恢复策略。在设计过程中,重点是在不连续的高阶滑动模式观察者设计中,因为它们在切换很重要的环境中发挥着可行的作用。通用传输模型(GTM)模型用于说明恢复过程。

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