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Model Structures and Algorithms for Identification of Aerodynamic Models for Flight Dynamics Applications

机译:用于飞行动力学应用的空气动力学模型识别的模型结构和算法

摘要

This paper describes model structures and parameter estimation algorithms suitable for the identification of unsteady aerodynamic models from input-output data. The model structures presented are state space models and include linear time-invariant (LTI) models and linear parameter-varying (LPV) models. They cover a wide range of local and parameter dependent identification problems arising in unsteady aerodynamics and nonlinear flight dynamics. We present a residue algorithm for estimating model parameters from data. The algorithm can incorporate apriori information and is described in detail. The algorithms are evaluated on the F-16XL wind-tunnel test data from NAS Langley Research Center. Results of numerical evaluation are presented. The paper concludes with a discussion major issues and directions for future work.
机译:本文介绍了适用于从输入输出数据中识别不稳定空气动力学模型的模型结构和参数估计算法。呈现的模型结构是状态空间模型,包括线性时不变(LTI)模型和线性参数变化(LPV)模型。它们涵盖了由不稳定的空气动力学和非线性飞行动力学引起的各种局部和参数相关的识别问题。我们提出了一种残差算法,用于从数据中估计模型参数。该算法可以合并先验信息,并对其进行详细描述。这些算法是根据NAS Langley研究中心的F-16XL风洞测试数据进行评估的。给出了数值评估的结果。本文最后讨论了主要问题和未来工作的方向。

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