A one dimensional discrete approach for the determination of the cross sectional properties of composite rotor blades
This work presents the theoretical aspects of a one dimensional computational approach for the determination of the cross sectional stiffness of composite rotor blades. The method is based on a vector variant of the classical lamination theory embedded into a geometrically exact large deformation-small strain thin-walled beam formulation, which is naturally oriented to multibody problems. The procedures rely on a one-dimensional discretization of the aerodynamic profile of the blade; this generates groups of finite segments of composite laminates which are assembled to find the stiffness properties of the blade cross section. The formulation accounts for warping and transverse shear; the warping problem is solved numerically by means of a one dimensional finite element formulation. The numerical tests show that the formulation gives very accurate results.
Year of publication: |
2015
|
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Authors: | Saravia, Martín C. ; Saravia, L. Joaquín ; Cortínez, Víctor H. |
Published in: |
Renewable Energy. - Elsevier, ISSN 0960-1481. - Vol. 80.2015, C, p. 713-723
|
Publisher: |
Elsevier |
Subject: | Wind turbines | Thin-walled beams | Composite materials | Finite elements | Aeroelasticity |
Saved in:
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