Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips

The impact of converter control strategies on the drive train of wind turbines during voltage dips is investigated in this paper using a full electromechanical model. Aerodynamics and tower vibration are taken into consideration by means of a simulation program, named FAST. Detailed gearbox and elec...

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Main Authors: Fenglin Miao, Hongsheng Shi, Xiaoqing Zhang
Format: Article
Language:English
Published: MDPI AG 2015-10-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/8/10/11452
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spelling doaj-22ea59194ece4d73aff96984e31d6c6a2020-11-24T22:01:19ZengMDPI AGEnergies1996-10732015-10-01810114521146910.3390/en81011452en81011452Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage DipsFenglin Miao0Hongsheng Shi1Xiaoqing Zhang2National Active Distribution Network Technology Research Center, School of Electrical Engineering, Beijing Jiaotong University, Beijing 100044, ChinaNational Active Distribution Network Technology Research Center, School of Electrical Engineering, Beijing Jiaotong University, Beijing 100044, ChinaNational Active Distribution Network Technology Research Center, School of Electrical Engineering, Beijing Jiaotong University, Beijing 100044, ChinaThe impact of converter control strategies on the drive train of wind turbines during voltage dips is investigated in this paper using a full electromechanical model. Aerodynamics and tower vibration are taken into consideration by means of a simulation program, named FAST. Detailed gearbox and electrical subsystems are represented in MATLAB. The dynamic response of electromagnetic torque and its impact on the mechanical variables are the concern in this paper and the response of electrical variables is less discussed. From the mechanical aspects, the effect of rising power recovery speed and unsymmetrical voltage dips are analyzed on the basis of the dynamic response of the high-speed shaft (HSS). A comparison of the impact on the drive train is made for two converter control strategies during small voltage dips. Through the analysis of torque, speed and tower vibration, the results indicate that both power recovery speed and the sudden torque sag have a significant impact on drive trains, and the effects depend on the different control strategies. Moreover, resonance might be excited on the drive train by an unbalanced voltage.http://www.mdpi.com/1996-1073/8/10/11452wind turbinedrive trainelectromechanical modelvoltage dipconverter control strategies
collection DOAJ
language English
format Article
sources DOAJ
author Fenglin Miao
Hongsheng Shi
Xiaoqing Zhang
spellingShingle Fenglin Miao
Hongsheng Shi
Xiaoqing Zhang
Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips
Energies
wind turbine
drive train
electromechanical model
voltage dip
converter control strategies
author_facet Fenglin Miao
Hongsheng Shi
Xiaoqing Zhang
author_sort Fenglin Miao
title Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips
title_short Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips
title_full Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips
title_fullStr Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips
title_full_unstemmed Impact of the Converter Control Strategies on the Drive Train of Wind Turbine during Voltage Dips
title_sort impact of the converter control strategies on the drive train of wind turbine during voltage dips
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2015-10-01
description The impact of converter control strategies on the drive train of wind turbines during voltage dips is investigated in this paper using a full electromechanical model. Aerodynamics and tower vibration are taken into consideration by means of a simulation program, named FAST. Detailed gearbox and electrical subsystems are represented in MATLAB. The dynamic response of electromagnetic torque and its impact on the mechanical variables are the concern in this paper and the response of electrical variables is less discussed. From the mechanical aspects, the effect of rising power recovery speed and unsymmetrical voltage dips are analyzed on the basis of the dynamic response of the high-speed shaft (HSS). A comparison of the impact on the drive train is made for two converter control strategies during small voltage dips. Through the analysis of torque, speed and tower vibration, the results indicate that both power recovery speed and the sudden torque sag have a significant impact on drive trains, and the effects depend on the different control strategies. Moreover, resonance might be excited on the drive train by an unbalanced voltage.
topic wind turbine
drive train
electromechanical model
voltage dip
converter control strategies
url http://www.mdpi.com/1996-1073/8/10/11452
work_keys_str_mv AT fenglinmiao impactoftheconvertercontrolstrategiesonthedrivetrainofwindturbineduringvoltagedips
AT hongshengshi impactoftheconvertercontrolstrategiesonthedrivetrainofwindturbineduringvoltagedips
AT xiaoqingzhang impactoftheconvertercontrolstrategiesonthedrivetrainofwindturbineduringvoltagedips
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