A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS
Structural deformation of composite wind turbine blades affect the aerodynamic performance of the rotor. To design better blades in terms of efficiency, aerodynamic performance and load mitigation, it is crucial to understand how blades act under operational loads. An interdisciplinary research shou...
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Hezarfen Aeronautics and Space Technologies Institue
2017-01-01
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Series: | Havacılık ve Uzay Teknolojileri Dergisi |
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Online Access: | http://www.jast.hho.edu.tr/JAST/index.php/JAST/article/view/25/18 |
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doaj-452c1b8f4bfe42f8abf15c0de4f9663e2020-11-25T00:40:29ZengHezarfen Aeronautics and Space Technologies InstitueHavacılık ve Uzay Teknolojileri Dergisi1304-04481304-04482017-01-011013144A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONSAkgün Kalkan0Zahit Mecitoğlu1INORESIstanbul Technical UniversityStructural deformation of composite wind turbine blades affect the aerodynamic performance of the rotor. To design better blades in terms of efficiency, aerodynamic performance and load mitigation, it is crucial to understand how blades act under operational loads. An interdisciplinary research should be conducted including composite structures and aerodynamics to analyze this interaction. This article focuses on the structural part and explains an easy to apply method to define sectional properties of a closed composite section. The method is based on Classical Lamination Theory (CLT) and it is assumed that the blade is a thin walled structure. Stress concentration and warping effects are ignored. During preliminary design phase, this method is useful to calculate bending and torsional stiffness values based on different lamination parameters and materials, it can also be used to investigate bending-torsion coupling effects. This article also includes parametric studies on NACA profiles using the method explained. This is the first phase of a study investigating aero-structure interaction in wind turbine blades and its effects on rotor performance.http://www.jast.hho.edu.tr/JAST/index.php/JAST/article/view/25/18wind turbine bladecomposite sectionblade section stiffnesscoupling |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Akgün Kalkan Zahit Mecitoğlu |
spellingShingle |
Akgün Kalkan Zahit Mecitoğlu A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS Havacılık ve Uzay Teknolojileri Dergisi wind turbine blade composite section blade section stiffness coupling |
author_facet |
Akgün Kalkan Zahit Mecitoğlu |
author_sort |
Akgün Kalkan |
title |
A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS |
title_short |
A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS |
title_full |
A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS |
title_fullStr |
A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS |
title_full_unstemmed |
A METHOD BASED ON CLASSICAL LAMINATION THEORY TO CALCULATE STIFFNESS PROPERTIES OF CLOSED COMPOSITE SECTIONS |
title_sort |
method based on classical lamination theory to calculate stiffness properties of closed composite sections |
publisher |
Hezarfen Aeronautics and Space Technologies Institue |
series |
Havacılık ve Uzay Teknolojileri Dergisi |
issn |
1304-0448 1304-0448 |
publishDate |
2017-01-01 |
description |
Structural deformation of composite wind turbine blades affect the aerodynamic performance of the rotor. To design better blades in terms of efficiency, aerodynamic performance and load mitigation, it is crucial to understand how blades act under operational loads. An interdisciplinary research should be conducted including composite structures and aerodynamics to analyze this interaction. This article focuses on the structural part and explains an easy to apply method to define sectional properties of a closed composite section. The method is based on Classical Lamination Theory (CLT) and it is assumed that the blade is a thin walled structure. Stress concentration and warping effects are ignored. During preliminary design phase, this method is useful to calculate bending and torsional stiffness values based on different lamination parameters and materials, it can also be used to investigate bending-torsion coupling effects. This article also includes parametric studies on NACA profiles using the method explained. This is the first phase of a study investigating aero-structure interaction in wind turbine blades and its effects on rotor performance. |
topic |
wind turbine blade composite section blade section stiffness coupling |
url |
http://www.jast.hho.edu.tr/JAST/index.php/JAST/article/view/25/18 |
work_keys_str_mv |
AT akgunkalkan amethodbasedonclassicallaminationtheorytocalculatestiffnesspropertiesofclosedcompositesections AT zahitmecitoglu amethodbasedonclassicallaminationtheorytocalculatestiffnesspropertiesofclosedcompositesections AT akgunkalkan methodbasedonclassicallaminationtheorytocalculatestiffnesspropertiesofclosedcompositesections AT zahitmecitoglu methodbasedonclassicallaminationtheorytocalculatestiffnesspropertiesofclosedcompositesections |
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1725289811966689280 |