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Modeling Aircraft Wing Loads from Flight Data Using Neural NetworksNeural networks were used to model wing bending-moment loads, torsion loads, and control surface hinge-moments of the Active Aeroelastic Wing (AAW) aircraft. Accurate loads models are required for the development of control laws designed to increase roll performance through wing twist while not exceeding load limits. Inputs to the model include aircraft rates, accelerations, and control surface positions. Neural networks were chosen to model aircraft loads because they can account for uncharacterized nonlinear effects while retaining the capability to generalize. The accuracy of the neural network models was improved by first developing linear loads models to use as starting points for network training. Neural networks were then trained with flight data for rolls, loaded reversals, wind-up-turns, and individual control surface doublets for load excitation. Generalization was improved by using gain weighting and early stopping. Results are presented for neural network loads models of four wing loads and four control surface hinge moments at Mach 0.90 and an altitude of 15,000 ft. An average model prediction error reduction of 18.6 percent was calculated for the neural network models when compared to the linear models. This paper documents the input data conditioning, input parameter selection, structure, training, and validation of the neural network models.
Document ID
20030075758
Acquisition Source
Armstrong Flight Research Center
Document Type
Technical Memorandum (TM)
Authors
Allen, Michael J.
(NASA Dryden Flight Research Center Edwards, CA, United States)
Dibley, Ryan P.
(NASA Dryden Flight Research Center Edwards, CA, United States)
Date Acquired
September 7, 2013
Publication Date
September 1, 2003
Subject Category
Aircraft Design, Testing And Performance
Report/Patent Number
NAS 1.15:212032
H-2546
NASA/TM-2003-212032
Report Number: NAS 1.15:212032
Report Number: H-2546
Report Number: NASA/TM-2003-212032
Meeting Information
Meeting: SAE World Aviation Congress
Location: Montreal, Quebec
Country: Canada
Start Date: September 11, 2003
Funding Number(s)
WORK_UNIT: WU 710-61-14
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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