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Artificial neural network prediction of aircraft aeroelastic behavior

Posted on:2002-03-18Degree:Ph.DType:Dissertation
University:Wichita State UniversityCandidate:Pesonen, Urpo JuhaniFull Text:PDF
GTID:1468390014450388Subject:Engineering
Abstract/Summary:
An Artificial Neural Network that predicts aeroelastic behavior of aircraft is presented. The neural net was designed to predict the shape of a flexible wing in static flight conditions using results from a structural analysis and an aerodynamic analysis performed with traditional computational tools. To generate reliable training and testing data for the network, an aeroelastic analysis code using these tools as components was designed and validated. To demonstrate the advantages and reliability of Artificial Neural Networks, a network was also designed and trained to predict airfoil maximum lift at low Reynolds numbers where wind tunnel data was used for the training. Finally, a neural net was designed and trained to predict the static aeroelastic behavior of a wing without the need to iterate between the structural and aerodynamic solvers.
Keywords/Search Tags:Aeroelastic, Artificial neural, Predict, Network, Designed
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