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  4. Stress and vibration analyses of the wind turbine blade (A NREL 5MW)
 
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Stress and vibration analyses of the wind turbine blade (A NREL 5MW)

Citation Link: https://doi.org/10.15480/882.2411
Publikationstyp
Journal Article
Date Issued
2019-06-19
Sprache
English
Author(s)
Zuheir, Sura  
Abdullah, Oday Ibraheem  
Al-Maliki, Mustafa  
Institut
Laser- und Anlagensystemtechnik G-2  
TORE-DOI
10.15480/882.2411
TORE-URI
http://hdl.handle.net/11420/3397
Journal
Journal of mechanical engineering research and developments  
Volume
42
Issue
4
Start Page
14
End Page
19
Citation
Journal of Mechanical Engineering Research and Developments 4 (42): 14-19 (2019)
Publisher DOI
10.26480/jmerd.04.2019.14.19
Scopus ID
2-s2.0-85070665688
Publisher
BUET
Owing to the fast development in the energy filed, the demand is increasing to improve energy efficiency and lifetime of wind turbine. Therefore, it's important to understand deeply the behavior of wind turbine under different load conditions. This research paper provides an approach to study and analyze the stresses and deformations under the steady-state condition. Also, it was investigated the vibration characteristics of the NREL offshore 5-MW blade (HAWT) with a long of (61.5 m) and with rotor diameter (126 m). The 3D model of wind turbine blade was created by using SOLIDWORKS and then exported to ANSYS/Workbench19 in order to achieve the numerical simulation based on Finite element method. The steady-state analysis of the selected wind turbine blade was performed at maximum rated power (maximum rotation velocity =12.1 rpm). In this work, three different materials (E-glass fiber, Kevlar, and Carbon fiber reinforced plastic) were selected to build the body of the wind blade parts. The results presented the von-Mises stresses, total deformations, first ten natural frequencies and mode shapes of NREL 5-MW wind turbine blade. In steady-state analysis, it was found that the optimum material was (CFRP) where the minimum level of stresses occurred. In vibration analysis, it was found the material that has a higher structural stiffness is CFRP material which avoids high frequencies and mode shapes.
Subjects
Finite element method
Stress analysis
Vibration analysis
Wind turbine blade
DDC Class
600: Technik
Lizenz
https://creativecommons.org/licenses/by/4.0/
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