LAPSE:2023.15278
Published Article

LAPSE:2023.15278
Stress Coupling Analysis and Failure Damage Evaluation of Wind Turbine Blades during Strong Winds
March 2, 2023
Abstract
Blades in strong wind conditions are prone to various failures and damage that is due to the action of random variable amplitude loads. In this study, we analyze the failure of 1.5 MW horizontal axis wind turbine blades. The computational fluid dynamics unsteady calculation method is used to simulate the aerodynamic load distribution on the blade. Fluid−structure coupling methods are applied to calculate the blade stress. The results show that the equivalent stress of the blade is the largest when the azimuth angle is 30°, and the maximum equivalent stress is 20.60 MPa. There are obvious stress peaks in six sections, such as r/R = 0.10 (the span length of blade/the full length of the blade = 0.10). The frequency of damage that is caused by the stress in each area of the blade is determined based on the blade damage. The frequency of gel coat cracking in the blade tips and leaves is 77.78% and 22.22%, respectively, and the frequency of crack occurrence is 87.75%, 10.20% and 2.05%, respectively. By combining the stress concentration area and the damage results, the cause of blade damage is determined, which can replace the traditional inspection methods and improve the inspection efficiency.
Blades in strong wind conditions are prone to various failures and damage that is due to the action of random variable amplitude loads. In this study, we analyze the failure of 1.5 MW horizontal axis wind turbine blades. The computational fluid dynamics unsteady calculation method is used to simulate the aerodynamic load distribution on the blade. Fluid−structure coupling methods are applied to calculate the blade stress. The results show that the equivalent stress of the blade is the largest when the azimuth angle is 30°, and the maximum equivalent stress is 20.60 MPa. There are obvious stress peaks in six sections, such as r/R = 0.10 (the span length of blade/the full length of the blade = 0.10). The frequency of damage that is caused by the stress in each area of the blade is determined based on the blade damage. The frequency of gel coat cracking in the blade tips and leaves is 77.78% and 22.22%, respectively, and the frequency of crack occurrence is 87.75%, 10.20% and 2.05%, respectively. By combining the stress concentration area and the damage results, the cause of blade damage is determined, which can replace the traditional inspection methods and improve the inspection efficiency.
Record ID
Keywords
azimuth, failure damage evaluation, failure location, fluid–solid coupling, stress concentration, wind turbine blade
Subject
Suggested Citation
Tian K, Song L, Chen Y, Jiao X, Feng R, Tian R. Stress Coupling Analysis and Failure Damage Evaluation of Wind Turbine Blades during Strong Winds. (2023). LAPSE:2023.15278
Author Affiliations
Tian K: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China
Song L: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China; Key Laboratory of Wind Energy and Solar Energy Technology, Ministry of Education, Hohhot 010051, China; Key Laboratory of Renewable Energy in Inner Mon
Chen Y: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China; Key Laboratory of Wind Energy and Solar Energy Technology, Ministry of Education, Hohhot 010051, China; Key Laboratory of Renewable Energy in Inner Mon
Jiao X: Inner Mongolia Power Science Research Institute, Hohhot 010051, China
Feng R: Guoshui Group Huade Wind Power Co., Ltd., Ulanqab 012000, China
Tian R: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China; Key Laboratory of Wind Energy and Solar Energy Technology, Ministry of Education, Hohhot 010051, China; Key Laboratory of Renewable Energy in Inner Mon
Song L: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China; Key Laboratory of Wind Energy and Solar Energy Technology, Ministry of Education, Hohhot 010051, China; Key Laboratory of Renewable Energy in Inner Mon
Chen Y: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China; Key Laboratory of Wind Energy and Solar Energy Technology, Ministry of Education, Hohhot 010051, China; Key Laboratory of Renewable Energy in Inner Mon
Jiao X: Inner Mongolia Power Science Research Institute, Hohhot 010051, China
Feng R: Guoshui Group Huade Wind Power Co., Ltd., Ulanqab 012000, China
Tian R: College of Energy and Power Engineering, Inner Mongolia University of Technology, Hohhot 010051, China; Key Laboratory of Wind Energy and Solar Energy Technology, Ministry of Education, Hohhot 010051, China; Key Laboratory of Renewable Energy in Inner Mon
Journal Name
Energies
Volume
15
Issue
4
First Page
1339
Year
2022
Publication Date
2022-02-12
ISSN
1996-1073
Version Comments
Original Submission
Other Meta
PII: en15041339, Publication Type: Journal Article
Record Map
Published Article

LAPSE:2023.15278
This Record
External Link

https://doi.org/10.3390/en15041339
Publisher Version
Download
Meta
Record Statistics
Record Views
137
Version History
[v1] (Original Submission)
Mar 2, 2023
Verified by curator on
Mar 2, 2023
This Version Number
v1
Citations
Most Recent
This Version
URL Here
https://psecommunity.org/LAPSE:2023.15278
Record Owner
Auto Uploader for LAPSE
Links to Related Works
[0.22 s]
