LAPSE:2023.35655
Published Article
LAPSE:2023.35655
Decomposition-Based Multi-Classifier-Assisted Evolutionary Algorithm for Bi-Objective Optimal Wind Farm Energy Capture
Hongbin Zhu, Xiang Gao, Lei Zhao, Xiaoshun Zhang
May 23, 2023
With the wake effect between different wind turbines, a wind farm generally aims to achieve the maximum energy capture by implementing the optimal pitch angle and blade tip speed ratio under different wind speeds. During this process, the balance of fatigue load distribution is easily neglected because it is difficult to be considered, and, thus, a high maintenance cost results. Herein, a novel bi-objective optimal wind farm energy capture (OWFEC) is constructed via simultaneously taking the maximum power output and the balance of fatigue load distribution into account. To rapidly acquire the high-quality Pareto optimal solutions, the decomposition-based multi-classifier-assisted evolutionary algorithm is designed for the presented bi-objective OWFEC. In order to evaluate the effectiveness and performance of the proposed technique, the simulations are carried out with three different scales of wind farms, while five familiar Pareto-based meta-heuristic algorithms are introduced for performance comparison.
Keywords
bi-objective optimization, fatigue load, Pareto-based optimization, wake effect, wind farm
Suggested Citation
Zhu H, Gao X, Zhao L, Zhang X. Decomposition-Based Multi-Classifier-Assisted Evolutionary Algorithm for Bi-Objective Optimal Wind Farm Energy Capture. (2023). LAPSE:2023.35655
Author Affiliations
Zhu H: College of Engineering, Shantou University, Shantou 515063, China
Gao X: Industrial Training Centre, Shenzhen Polytechnic, Shenzhen 518055, China [ORCID]
Zhao L: College of Engineering, Shantou University, Shantou 515063, China
Zhang X: Foshan Graduate School of Innovation, Northeastern University, Foshan 528311, China [ORCID]
Journal Name
Energies
Volume
16
Issue
9
First Page
3718
Year
2023
Publication Date
2023-04-26
Published Version
ISSN
1996-1073
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Original Submission
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PII: en16093718, Publication Type: Journal Article
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LAPSE:2023.35655
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doi:10.3390/en16093718
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May 23, 2023
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CC BY 4.0
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[v1] (Original Submission)
May 23, 2023
 
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Calvin Tsay
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