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Parameter identification for inflight detection and characterization of aircraft icing

机译:机上检测和飞机结冰特性的参数识别

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Increasing interest in aircraft icing has motivated the proposal of a new ice management system that would provide inflight monitoring of ice accretion effects. Since these effects are manifested in the flight dynamics, parameter identification is a critical element of ice detection. In particular, identification must provide timely and accurate parameter estimates under normal operational input in the presence of disturbances and measurement noise. This paper evaluates a batch least--squares algorithm, an extended Kalman filter, and an H~∞ algorithm in the context of icing detection. Simulation results show that only the H~∞ method provides a timely and accurate icing indication.
机译:对飞机结冰的兴趣日益增长,促使人们提出了一种新的冰管理系统的建议,该系统将在飞行中对积冰的影响进行监测。由于这些影响体现在飞行动力学中,因此参数识别是制冰检测的关键要素。特别是,在存在干扰和测量噪声的情况下,识别必须在正常操作输入下提供及时,准确的参数估计。本文在结冰检测的背景下评估了批次最小二乘算法,扩展卡尔曼滤波器和H〜∞算法。仿真结果表明,只有H〜∞方法可以提供及时,准确的结冰指示。

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