Effects of POD Control on a DFIG Wind Turbine Structural System
This paper investigates the effects power oscillation damping (POD) controller could have on a wind turbine structural system. Most of the published work in this area has been done using relatively simple aerodynamic and structural models of a wind turbine which cannot be used to investigate the det...
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Published in | IEEE transactions on energy conversion Vol. 35; no. 2; pp. 765 - 774 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
Published |
New York
IEEE
01.06.2020
The Institute of Electrical and Electronics Engineers, Inc. (IEEE) |
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Abstract | This paper investigates the effects power oscillation damping (POD) controller could have on a wind turbine structural system. Most of the published work in this area has been done using relatively simple aerodynamic and structural models of a wind turbine which cannot be used to investigate the detailed interactions between electrical and mechanical components of the wind turbine. Therefore, a detailed model that combines electrical, structural and aerodynamic characteristics of a grid-connected Doubly Fed Induction Generator (DFIG) based wind turbine has been developed by adapting the NREL (National Renewable Energy Laboratory) 5 MW wind turbine model within FAST (Fatigue, Aerodynamics, Structures, and Turbulence) code. This detailed model is used to evaluate the effects of POD controller on the wind turbine system. The results appear to indicate that the effects of POD control on the WT structural system are comparable or less significant as those caused by wind speed variations. Furthermore, the results also reveal that the effects of a transient three-phase short circuit fault on the WT structural system are much larger than those caused by the POD controller. |
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AbstractList | This paper investigates the effects power oscillation damping (POD) controller could have on a wind turbine structural system. Most of the published work in this area has been done using relatively simple aerodynamic and structural models of a wind turbine which cannot be used to investigate the detailed interactions between electrical and mechanical components of the wind turbine. Therefore, a detailed model that combines electrical, structural and aerodynamic characteristics of a grid-connected Doubly Fed Induction Generator (DFIG) based wind turbine has been developed by adapting the NREL (National Renewable Energy Laboratory) 5 MW wind turbine model within FAST (Fatigue, Aerodynamics, Structures, and Turbulence) code. This detailed model is used to evaluate the effects of POD controller on the wind turbine system. The results appear to indicate that the effects of POD control on the WT structural system are comparable or less significant as those caused by wind speed variations. Furthermore, the results also reveal that the effects of a transient three-phase short circuit fault on the WT structural system are much larger than those caused by the POD controller. This paper investigates the effects power oscillation damping (POD) controller could have on a wind turbine structural system. Most of the published work in this area has been done using relatively simple aerodynamic and structural models of a wind turbine which cannot be used to investigate the detailed interactions between electrical and mechanical components of the wind turbine. Therefore, a detailed model that combines electrical, structural and aerodynamic characteristics of a grid-connected Doubly Fed Induction Generator (DFIG) based wind turbine has been developed by adapting the NREL (National Renewable Energy Laboratory) 5 MW wind turbine model within FAST (Fatigue, Aerodynamics, Structures, and Turbulence) code. This detailed model is used to evaluate the effects of POD controller on the wind turbine system. The results appear to indicate that the effects of POD control on the WT structural system are comparable or less significant as those caused by wind speed variations. Furthermore, the results also reveal that the effects of a transient three-phase short circuit fault on the WT structural system are much larger than those caused by the POD controller. |
Author | Edrah, Mohamed Marshall, Benjamin Zhao, Xiaowei Hung, William Karcanias, Aris Qi, Pengyuan Baloch, Shurooque |
Author_xml | – sequence: 1 givenname: Mohamed orcidid: 0000-0002-5417-1468 surname: Edrah fullname: Edrah, Mohamed email: m.edrah@warwick.ac.uk organization: School of Engineering, University of Warwick, Coventry, U.K – sequence: 2 givenname: Xiaowei orcidid: 0000-0002-1182-4502 surname: Zhao fullname: Zhao, Xiaowei email: xiaowei.zhao@warwick.ac.uk organization: School of Engineering, University of Warwick, Coventry, U.K – sequence: 3 givenname: William orcidid: 0000-0002-2042-915X surname: Hung fullname: Hung, William email: ukwilliamhung @gmail.com organization: WH Power Systems consultant Ltd, Leamington Spa, U.K – sequence: 4 givenname: Pengyuan surname: Qi fullname: Qi, Pengyuan email: p.qi@warwick.ac.uk organization: School of Engineering, University of Warwick, Coventry, U.K – sequence: 5 givenname: Benjamin surname: Marshall fullname: Marshall, Benjamin email: ben.marshall@ nationalgrideso.com organization: National Grid (SO), National Grid House, Warwick, U.K – sequence: 6 givenname: Aris surname: Karcanias fullname: Karcanias, Aris email: aris.karcanias@ fticonsulting .com organization: FTI Consulting, London, U.K – sequence: 7 givenname: Shurooque surname: Baloch fullname: Baloch, Shurooque email: shurooque.baloch@nationalgrideso.com organization: National Grid (SO), National Grid House, Warwick, U.K |
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SubjectTerms | Aerodynamic characteristics Aerodynamics blade edgewise vibration Controllers Damping DFIG Doubly fed induction generators FAST Induction generators Mathematical model Matlab/Simulink Mechanical components Oscillators POD Reactive power Short circuits Structural models Turbines Wind speed Wind turbine modelling Wind turbines |
Title | Effects of POD Control on a DFIG Wind Turbine Structural System |
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