Fault-tolerant optimal pitch control of wind turbines using dynamic weighted parallel firefly algorithm
Yashar Mousavi1, Geraint Bevan1, Ibrahim Beklan Kucukdemiral1
1Department of Applied Science, School of Computing, Engineering and Built Environment, Glasgow Caledonian University, Glasgow G4 0BA, UK.
This study introduces an optimal fault-tolerant pitch control (FTPC) strategy for wind turbine (WT) systems. The new method enhances reliability and consistent power generation, even with system faults.
Area of Science:
- Renewable Energy Systems
- Control Engineering
- Electrical Power Generation
Background:
- Wind turbine (WT) systems are increasingly vital for electrical energy generation.
- Enhancing WT efficiency and reliability necessitates robust fault-tolerance.
- Pitch control is critical for managing WT performance under various operating conditions.
Purpose of the Study:
- To develop an optimal fault-tolerant pitch control (FTPC) strategy for wind turbines.
- To improve WT performance and reliability in the presence of sensor, actuator, and system faults.
- To introduce a novel control scheme integrating fractional calculus and advanced optimization.
Main Methods:
- Implementation of a fractional-calculus based extended memory (EM) pitch control strategy.
- Utilization of a fractional-order proportional-integral-derivative (FOPID) controller.
- Employing a dynamic weighted parallel firefly algorithm (DWPFA) for controller parameter tuning.
- Evaluation on a 4.8-MW WT benchmark model and comparison with conventional methods.
Main Results:
- The proposed FTPC strategy demonstrated enhanced fault-tolerant capabilities.
- The control scheme maintained consistent power generation at a given wind speed, even under fault conditions.
- Comparative analysis showed superiority over conventional PI and basic FOPID controllers.
Conclusions:
- The developed optimal fault-tolerant pitch control strategy significantly improves WT reliability and performance.
- The integration of fractional calculus and DWPFA offers a promising approach for advanced WT control.
- The proposed method ensures more stable power output, crucial for grid integration.
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