Research on Wind Turbine Fault Detection Based on CNN-LSTM
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- Kusiak, Andrew & Verma, Anoop, 2012. "Analyzing bearing faults in wind turbines: A data-mining approach," Renewable Energy, Elsevier, vol. 48(C), pages 110-116.
- Kong, Yun & Qin, Zhaoye & Wang, Tianyang & Han, Qinkai & Chu, Fulei, 2021. "An enhanced sparse representation-based intelligent recognition method for planet bearing fault diagnosis in wind turbines," Renewable Energy, Elsevier, vol. 173(C), pages 987-1004.
- Lei, Jinhao & Liu, Chao & Jiang, Dongxiang, 2019. "Fault diagnosis of wind turbine based on Long Short-term memory networks," Renewable Energy, Elsevier, vol. 133(C), pages 422-432.
- Azizi, Askar & Nourisola, Hamid & Shoja-Majidabad, Sajjad, 2019. "Fault tolerant control of wind turbines with an adaptive output feedback sliding mode controller," Renewable Energy, Elsevier, vol. 135(C), pages 55-65.
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Cited by:
- Na Zhang & Gang Yang & Zilong Fu & Junsheng Hou, 2024. "A Grounding Current Prediction Method Based on Frequency-Enhanced Transformer," Energies, MDPI, vol. 18(1), pages 1-23, December.
- Ramesh Kumar Behara & Akshay Kumar Saha, 2025. "Optimised Neural Network Model for Wind Turbine DFIG Converter Fault Diagnosis," Energies, MDPI, vol. 18(13), pages 1-31, June.
- Yao, Jiachi & Han, Te, 2026. "Utilizing large-scale foundation models for prognostics and health management in wind turbines: Techniques, challenges, and future directions," Renewable and Sustainable Energy Reviews, Elsevier, vol. 227(C).
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