Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
10283831 | Composite Structures | 2012 | 10 Pages |
Abstract
The present paper investigates the effect of material coupling on static and modal characteristics of composite structures. Incorporation of stiffness and damping coupling terms into a beam formulation yields equivalent section stiffness and damping properties. Building upon the damping mechanics, an extended beam finite element is developed capable of providing the stiffness and damping matrices of the structure. Validation cases on beams and blades demonstrate the importance of all stiffness and damping terms. Numerical results validate the predicted effect of material coupling on static characteristics of composite box-section beams. The effect of the full coupling damping matrices on modal frequencies and structural modal damping of composite beams is investigated. Box-section beams and small blade models with various ply angle laminations at the girder segments are considered. Finally, the developed finite element is applied to the prediction of the modal characteristics of a 19Â m realistic wind-turbine model blade.
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Authors
Dimitris I. Chortis, Dimitris S. Varelis, Dimitris A. Saravanos,