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Wavelet Filtering to Reduce Conservatism in Aeroservoelastic Robust Stability Margins

机译:小波滤波可降低航空弹塑性鲁棒稳定性裕度中的保守性

摘要

Wavelet analysis for filtering and system identification was used to improve the estimation of aeroservoelastic stability margins. The conservatism of the robust stability margins was reduced with parametric and nonparametric time-frequency analysis of flight data in the model validation process. Nonparametric wavelet processing of data was used to reduce the effects of external desirableness and unmodeled dynamics. Parametric estimates of modal stability were also extracted using the wavelet transform. Computation of robust stability margins for stability boundary prediction depends on uncertainty descriptions derived from the data for model validation. F-18 high Alpha Research Vehicle aeroservoelastic flight test data demonstrated improved robust stability prediction by extension of the stability boundary beyond the flight regime.
机译:小波分析的滤波和系统识别被用来改进对航空弹性弹性裕度的估计。在模型验证过程中,通过对飞行数据进行参数和非参数时频分析,降低了鲁棒稳定裕度的保守性。数据的非参数小波处理用于减少外部期望和未建模动力学的影响。使用小波变换还可以提取模态稳定性的参数估计值。用于稳定性边界预测的鲁棒稳定性裕度的计算取决于从用于模型验证的数据得出的不确定性描述。 F-18高Alpha研究飞行器航空弹性飞行测试数据表明,通过将稳定性边界扩展到飞行状态之外,可以改善鲁棒的稳定性预测。

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  • 作者

    Lind Rick; Brenner Marty;

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  • 年度 1998
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