Dimitris I Chortis Chortis Structural Analysis of Composite Wind Turbine Blades

Structural Analysis of Composite Wind Turbine Blades

von Dimitris I Chortis

Nonlinear Mechanics and Finite Element Models with Material Damping

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Beschreibung

This book concerns the development of novel finite elements for the structural analysis of composite beams and blades. The introduction of material damping is also an important aspect of composite structures and it is presented here in terms of their static and dynamic behavior. The book thoroughly presents a new shear beam finite element, which entails new blade section mechanics, capable of predicting structural blade coupling due to composite coupling and/or internal section geometry. Theoretical background is further expanded towards the inclusion of nonlinear structural blade models and damping mechanics for composite structures. The models effectively include geometrically nonlinear terms due to large displacements and rotations, improve the modeling accuracy of very large flexible blades, and enable the modeling of rotational stiffening and buckling, as well as, nonlinear structural coupling. Validation simulations on specimen level study the geometric nonlinearities effect on the modal frequencies and damping values of composite strips of various angle-ply laminations under either tensile or buckling loading. A series of correlation cases between numerical predictions and experimental measurements give credence to the developed nonlinear beam finite element models and underline the essential role of new nonlinear damping and stiffness terms.


This book concerns the development of novel finite elements for the structural analysis of composite beams and blades. The introduction of material damping is also an important aspect of composite structures and it is presented here in terms of their static and dynamic behavior. The book thoroughly presents a new shear beam finite element, which entails new blade section mechanics, capable of predicting structural blade coupling due to composite coupling and/or internal section geometry. Theoretical background is further expanded towards the inclusion of nonlinear structural blade models and damping mechanics for composite structures. The models effectively include geometrically nonlinear terms due to large displacements and rotations, improve the modeling accuracy of very large flexible blades, and enable the modeling of rotational stiffening and buckling, as well as, nonlinear structural coupling. Validation simulations on specimen level study the geometric nonlinearities effect on the modal frequencies and damping values of composite strips of various angle-ply laminations under either tensile or buckling loading. A series of correlation cases between numerical predictions and experimental measurements give credence to the developed nonlinear beam finite element models and underline the essential role of new nonlinear damping and stiffness terms.


Recent research on the Structural Analysis of Composite Wind Turbine Blades Presents Nonlinear Mechanics and Finite Element Models with Material Damping for the Static and Dynamic Analysis of Composite Wind Turbine Blades Recipient of the Excellent Young Wind Doctor Award 2012of the European Academy of Wind Energy (EAWE)

Autor*in

Dimitris I Chortis

Themen in »Structural Analysis of Composite Wind Turbine Blades«

Composite Wind Turbine Blades FEM Nonlinear Mechanics Wind Energy complexity

Stimmen zu »Structural Analysis of Composite Wind Turbine Blades«

Details

ISBN: 9783319033716
Verlag: Springer International Publishing
Erscheinung: 07.08.2015

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