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An Overview on Fault Diagnosis, Prognosis and Resilient Control for Wind Turbine Systems

期刊

PROCESSES
卷 9, 期 2, 页码 -

出版社

MDPI
DOI: 10.3390/pr9020300

关键词

wind turbine; energy conversion systems; condition monitoring; fault diagnosis; fault prognosis; resilient control

资金

  1. Northumbria University (UK)
  2. National Nature Science Foundation of China [61673074]

向作者/读者索取更多资源

Wind energy is playing an increasingly important role in the world energy market, but concerns about the high failure rate of wind turbine systems are growing. Therefore, improving the reliability and performance of wind turbine systems is crucial. Over the past 20 years, significant progress has been made in fault diagnosis, prognosis, and resilient control techniques for wind turbine systems.
Wind energy is contributing to more and more portions in the world energy market. However, one deterrent to even greater investment in wind energy is the considerable failure rate of turbines. In particular, large wind turbines are expensive, with less tolerance for system performance degradations, unscheduled system shut downs, and even system damages caused by various malfunctions or faults occurring in system components such as rotor blades, hydraulic systems, generator, electronic control units, electric systems, sensors, and so forth. As a result, there is a high demand to improve the operation reliability, availability, and productivity of wind turbine systems. It is thus paramount to detect and identify any kinds of abnormalities as early as possible, predict potential faults and the remaining useful life of the components, and implement resilient control and management for minimizing performance degradation and economic cost, and avoiding dangerous situations. During the last 20 years, interesting and intensive research results were reported on fault diagnosis, prognosis, and resilient control techniques for wind turbine systems. This paper aims to provide a state-of-the-art overview on the existing fault diagnosis, prognosis, and resilient control methods and techniques for wind turbine systems, with particular attention on the results reported during the last decade. Finally, an overlook on the future development of the fault diagnosis, prognosis, and resilient control techniques for wind turbine systems is presented.

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