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  4. Condition monitoring of wind turbine drivetrains: state-of-the-art technologies, recent trends, and future outlook
 
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June 18, 2026
Journal Article
Title

Condition monitoring of wind turbine drivetrains: state-of-the-art technologies, recent trends, and future outlook

Abstract
As global wind capacity expands, reducing operations and maintenance costs is critical to lowering the levelized cost of energy. This paper explores the state of the art in condition monitoring and prognostic strategies for wind turbine drivetrains, which are among the most failure-prone and maintenance-intensive subsystems. Current diagnostic methodologies are evaluated, covering supervisory control and data acquisition (SCADA) data, high-frequency vibration and acoustic analysis, machine learning and digital twin frameworks. Finally, practical challenges are identified that limit wide-scale industrial adoption, in order to guide future research and industrial efforts.
Author(s)
Kestel, Kayacan
Chesterman, Xavier
Zappalá, Donatella
Watson, Simon
Li, Mingxin
Hart, Edward
Carroll, James
Vidal, Yolanda
Nejad, Amir R.
Sheng, Shawn
Guo, Yi
Stammler, Matthias  
Fraunhofer-Institut für Windenergiesysteme IWES  
Wirsing, Florian
Saleh, Ahmed
Gregarek, Nico
Baszenski, Thao
Decker, Thomas
Knops, Martin
Jacobs, Georg
Lehmann, Benjamin
König, Florian
Pereira, Ines
Daems, Pieter-Jan
Peeters, Cédric
Helsen, Jan
Journal
Wind energy science : WES  
Open Access
File(s)
Download (5.63 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.5194/wes-11-2103-2026
10.24406/publica-9061
Additional link
Full text
Language
English
Fraunhofer-Institut für Windenergiesysteme IWES  
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